Changes for page SDMX 2.1 Standards. Section 6. Technical Notes
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... ... @@ -4,11 +4,10 @@ 4 4 5 5 **Revision History** 6 6 7 -(% style="width:954.835px" %) 8 -|(% style="width:106px" %)**Revision**|(% style="width:124px" %)**Date**|(% style="width:723px" %)**Contents** 9 -|(% style="width:106px" %) |(% style="width:124px" %)April 2011|(% style="width:723px" %)Initial release 10 -|(% style="width:106px" %)1.0|(% style="width:124px" %)April 2013|(% style="width:723px" %)Added section 9 - Transforming between versions of SDMX 11 -|(% style="width:106px" %)2.0|(% style="width:124px" %)July 2020|(% style="width:723px" %)Added section 10 – Validation and Transformation Language – before the Annex 1. 7 +|**Revision**|**Date**|**Contents** 8 +| |April 2011|Initial release 9 +|1.0|April 2013|Added section 9 - Transforming between versions of SDMX 10 +|2.0|July 2020|Added section 10 – Validation and Transformation Language – before the Annex 1. 12 12 13 13 = 1 Purpose and Structure = 14 14 ... ... @@ -42,7 +42,7 @@ 42 42 43 43 === 3.2.1 Introduction === 44 44 45 -The purpose of this sub-section is to provide an introduction to the SDMX-IM relating to Data Structure Definitions and Data Sets for those whose primary interest is in the use of the XML or EDI formats. For those wishing to have a deeper understanding of the Information Model, the full SDMX-IM document, and other sections in this guide provide a more in-depth view, along with UML diagrams and supporting explanation. For those who are unfamiliar with DSDs, an appendix to the SDMX-IM provides a tutorial which may serve as a useful introduction. 44 +The purpose of this sub-section is to provide an introduction to the SDMX-IM relating to Data Structure Definitions and Data Sets for those whose primary interest is in the use of the XML or EDI formats. For those wishing to have a deeper understanding of the Information Model, the full SDMX-IM document, and other sections in this guide provide a more in-depth view, along with UML diagrams and supporting explanation. For those who are unfamiliar with DSDs, an appendix to the SDMX-IM provides a tutorial which may serve as a useful introduction. 46 46 47 47 The SDMX-IM is used to describe the basic data and metadata structures used in all of the SDMX data formats. The Information Model concerns itself with statistical data and its structural metadata, and that is what is described here. Both structural metadata and data have some additional metadata in common, related to their management and administration. These aspects of the data model are not addressed in this section and covered elsewhere in this guide or in the full SDMX-IM document. 48 48 ... ... @@ -70,33 +70,39 @@ 70 70 71 71 To allow for applications which only understand time series data, variations of these formats have been introduced in the form of two data messages; //GenericTimeSeriesData// and //StructureSpecificTimeSeriesData//. It is important to note that these variations are built on the same root structure and can be processed in the same manner as the base format so that they do NOT introduce additional processing requirements. 72 72 73 - **//Structure Definition//**72 +=== //Structure Definition// === 74 74 75 75 The SDMX-ML Structure Message supports the use of annotations to the structure, which is not supported by the SDMX-EDI syntax. 76 76 77 77 The SDMX-ML Structure Message allows for the structures on which a Data Structure Definition depends – that is, codelists and concepts – to be either included in the message or to be referenced by the message containing the data structure definition. XML syntax is designed to leverage URIs and other Internet-based referencing mechanisms, and these are used in the SDMX-ML message. This option is not available to those using the SDMX-EDI structure message. 78 78 79 - **//Validation//**78 +=== //Validation// === 80 80 81 -SDMX-EDI – as is typical of EDIFACT syntax messages – leaves validation to dedicated applications (“validation” being the checking of syntax, data typing, and adherence of the data message to the structure as described in the structural definition.)80 +SDMX-EDI – as is typical of EDIFACT syntax messages – leaves validation to dedicated applications (“validation” being the checking of syntax, data typing, and adherence of the data message to the structure as described in the structural 82 82 82 +definition.) 83 + 83 83 The SDMX-ML Generic Data Message also leaves validation above the XML syntax level to the application. 84 84 85 85 The SDMX-ML DSD-specific messages will allow validation of XML syntax and datatyping to be performed with a generic XML parser, and enforce agreement between the structural definition and the data to a moderate degree with the same tool. 86 86 87 -//Update and Delete Messages and Documentation Messages// 88 +=== //Update and Delete Messages and Documentation Messages// === 88 88 89 89 All SDMX data messages allow for both delete messages and messages consisting of only data or only documentation. 90 90 91 - **//Character Encodings//**92 +=== //Character Encodings// === 92 92 93 -All SDMX-ML messages use the UTF-8 encoding, while SDMX-EDI uses the ISO 8879-1 character encoding. There is a greater capacity with UTF-8 to express some character sets (see the “APPENDIX: MAP OF ISO 8859-1 (UNOC) CHARACTER SET (LATIN 1 OR “WESTERN”) in the document “SYNTAX AND DOCUMENTATION VERSION 2.0”.) Many transformation tools are available which allow XML instances with UTF-8 encodings to be expressed as ISO 8879-1-encoded characters, and to transform UTF-8 into ISO 8879-1. Such tools should be used when transforming SDMX-ML messages into SDMX-EDI messages and vice-versa.94 +All SDMX-ML messages use the UTF-8 encoding, while SDMX-EDI uses the ISO 8879-1 character encoding. There is a greater capacity with UTF-8 to express some character sets (see the “APPENDIX: MAP OF ISO 8859-1 (UNOC) CHARACTER 94 94 95 - **//DataTyping//**96 +SET (LATIN 1 OR “WESTERN”) in the document “SYNTAX AND 96 96 98 +DOCUMENTATION VERSION 2.0”.) Many transformation tools are available which allow XML instances with UTF-8 encodings to be expressed as ISO 8879-1-encoded characters, and to transform UTF-8 into ISO 8879-1. Such tools should be used when transforming SDMX-ML messages into SDMX-EDI messages and vice-versa. 99 + 100 +=== //Data Typing// === 101 + 97 97 The XML syntax and EDIFACT syntax have different data-typing mechanisms. The section below provides a set of conventions to be observed when support for messages in both syntaxes is required. For more information on the SDMX-ML representations of data, see below. 98 98 99 -=== 3.3.2 Data Types === 104 +==== 3.3.2 Data Types ==== 100 100 101 101 The XML syntax has a very different mechanism for data-typing than the EDIFACT syntax, and this difference may create some difficulties for applications which support both EDIFACT-based and XML-based SDMX data formats. This section provides a set of conventions for the expression in data in all formats, to allow for clean interoperability between them. 102 102 ... ... @@ -112,8 +112,7 @@ 112 112 1*. Maximum 70 characters. 113 113 1*. From ISO 8859-1 character set (including accented characters) 114 114 1. **Descriptions **are: 115 -1*. Maximum 350 characters; 116 -1*. From ISO 8859-1 character set. 120 +1*. Maximum 350 characters; From ISO 8859-1 character set. 117 117 1. **Code values** are: 118 118 1*. Maximum 18 characters; 119 119 1*. Any of A..Z (upper case alphabetic), 0..9 (numeric), _ (underscore), / (solidus, slash), = (equal sign), - (hyphen); ... ... @@ -122,51 +122,45 @@ 122 122 123 123 A..Z (upper case alphabetic), 0..9 (numeric), _ (underscore) 124 124 125 -**5. Observation values** are: 129 +1. **Observation values** are: 130 +1*. Decimal numerics (signed only if they are negative); 131 +1*. The maximum number of significant figures is: 132 +1*. 15 for a positive number 133 +1*. 14 for a positive decimal or a negative integer 134 +1*. 13 for a negative decimal 135 +1*. Scientific notation may be used. 136 +1. **Uncoded statistical concept** text values are: 137 +1*. 138 +1**. Maximum 1050 characters; 139 +1**. From ISO 8859-1 character set. 140 +1. **Time series keys**: 126 126 127 -* Decimal numerics (signed only if they are negative); 128 -* The maximum number of significant figures is: 129 -* 15 for a positive number 130 -* 14 for a positive decimal or a negative integer 131 -* 13 for a negative decimal 132 -* Scientific notation may be used. 142 +In principle, the maximum permissible length of time series keys used in a data exchange does not need to be restricted. However, for working purposes, an effort is made to limit the maximum length to 35 characters; in this length, also (for SDMXEDI) one (separator) position is included between all successive dimension values; this means that the maximum length allowed for a pure series key (concatenation of dimension values) can be less than 35 characters. The separator character is a colon (“:”) by conventional usage. 133 133 134 -**6. Uncoded statistical concept** text values are: 135 - 136 -* Maximum 1050 characters; 137 -* From ISO 8859-1 character set. 138 - 139 -**7. Time series keys**: 140 - 141 -In principle, the maximum permissible length of time series keys used in a data exchange does not need to be restricted. However, for working purposes, an effort is made to limit the maximum length to 35 characters; in this length, also (for SDMXEDI) one (separator) position is included between all successive dimension values; this means that the maximum length allowed for a pure series key (concatenation of dimension values) can be less than 35 characters. The separator character is a colon (“:”) by conventional usage. 142 - 143 143 == 3.4 SDMX-ML and SDMX-EDI Best Practices == 144 144 145 -=== 3.4.1 Reporting and Dissemination Guidelines === 146 +=== 3.4.1 Reporting and Dissemination Guidelines === 146 146 147 - ====3.4.1.1 Central Institutions and Their Role in Statistical Data Exchanges====148 +**3.4.1.1 Central Institutions and Their Role in Statistical Data Exchanges **Central institutions are the organisations to which other partner institutions "report" statistics. These statistics are used by central institutions either to compile aggregates and/or they are put together and made available in a uniform manner (e.g. on-line or on a CD-ROM or through file transfers). Therefore, central institutions receive data from other institutions and, usually, they also "disseminate" data to individual and/or institutions for end-use. Within a country, a NSI or a national central bank (NCB) plays, of course, a central institution role as it collects data from other entities and it disseminates statistical information to end users. In SDMX the role of central institution is very important: every statistical message is based on underlying structural definitions (statistical concepts, code lists, DSDs) which have been devised by a particular agency, usually a central institution. Such an institution plays the role of the reference "structural definitions maintenance agency" for the corresponding messages which are exchanged. Of course, two institutions could exchange data using/referring to structural information devised by a third institution. 148 148 149 -Central institutions are the organisations to which other partner institutions "report" statistics. These statistics are used by central institutions either to compile aggregates and/or they are put together and made available in a uniform manner (e.g. on-line or on a CD-ROM or through file transfers). Therefore, central institutions receive data from other institutions and, usually, they also "disseminate" data to individual and/or institutions for end-use. Within a country, a NSI or a national central bank (NCB) plays, of course, a central institution role as it collects data from other entities and it disseminates statistical information to end users. In SDMX the role of central institution is very important: every statistical message is based on underlying structural definitions (statistical concepts, code lists, DSDs) which have been devised by a particular agency, usually a central institution. Such an institution plays the role of the reference "structural definitions maintenance agency" for the corresponding messages which are exchanged. Of course, two institutions could exchange data using/referring to structural information devised by a third institution. 150 - 151 151 Central institutions can play a double role: 152 152 153 153 * collecting and further disseminating statistics; 154 154 * devising structural definitions for use in data exchanges. 155 155 156 - ====3.4.1.2 Defining Data Structure Definitions (DSDs)====155 +**3.4.1.2 Defining Data Structure Definitions (DSDs)** 157 157 158 158 The following guidelines are suggested for building a DSD. However, it is expected that these guidelines will be considered by central institutions when devising new DSDs. 159 159 160 -(% class="wikigeneratedid" id="HDimensions2CAttributesandCodeLists" %) 161 -__Dimensions, Attributes and Code Lists__ 159 +=== Dimensions, Attributes and Code Lists === 162 162 163 -**//Avoid dimensions that are not appropriate for all the series in the data structure definition.//** If some dimensions are not applicable (this is evident from the need to have a code in a code list which is marked as “not applicable”, “not relevant” or “total”) for some series then consider moving these series to a new data structure definition in which these dimensions are dropped from the key structure. This is a judgement call as it is sometimes difficult to achieve this without increasing considerably the number of DSDs. 161 +**//Avoid dimensions that are not appropriate for all the series in the data structure definition.//** If some dimensions are not applicable (this is evident from the need to have a code in a code list which is marked as “not applicable”, “not relevant” or “total”) for some series then consider moving these series to a new data structure definition in which these dimensions are dropped from the key structure. This is a judgement call as it is sometimes difficult to achieve this without increasing considerably the number of DSDs. 164 164 165 165 **//Devise DSDs with a small number of Dimensions for public viewing of data.//** A DSD with the number dimensions in excess 6 or 7 is often difficult for non specialist users to understand. In these cases it is better to have a larger number of DSDs with smaller “cubes” of data, or to eliminate dimensions and aggregate the data at a higher level. Dissemination of data on the web is a growing use case for the SDMX standards: the differentiation of observations by dimensionality which are necessary for statisticians and economists are often obscure to public consumers who may not always understand the semantic of the differentiation. 166 166 167 -**//Avoid composite dimensions.//** Each dimension should correspond to a single characteristic of the data, not to a combination of characteristics. 165 +**//Avoid composite dimensions.//** Each dimension should correspond to a single characteristic of the data, not to a combination of characteristics. 168 168 169 -**//Consider the inclusion of the following attributes//**. Once the key structure of a data structure definition has been decided, then the set of (preferably mandatory) attributes of this data structure definition has to be defined. In general, some statistical concepts are deemed necessary across all Data Structure Definitions to qualify the contained information. Examples of these are: 167 +**//Consider the inclusion of the following attributes//**. Once the key structure of a data structure definition has been decided, then the set of (preferably mandatory) attributes of this data structure definition has to be defined. In general, some statistical concepts are deemed necessary across all Data Structure Definitions to qualify the contained information. Examples of these are: 170 170 171 171 * A descriptive title for the series (this is most useful for dissemination of data for viewing e.g. on the web) 172 172 * Collection (e.g. end of period, averaged or summed over period) ... ... @@ -188,7 +188,7 @@ 188 188 189 189 The same code list can be used for several statistical concepts, within a data structure definition or across DSDs. Note that SDMX has recognised that these classifications are often quite large and the usage of codes in any one DSD is only a small extract of the full code list. In this version of the standard it is possible to exchange and disseminate a **partial code list** which is extracted from the full code list and which supports the dimension values valid for a particular DSD. 190 190 191 - __Data Structure Definition Structure__189 +=== Data Structure Definition Structure === 192 192 193 193 The following items have to be specified by a structural definitions maintenance agency when defining a new data structure definition: 194 194 ... ... @@ -218,7 +218,7 @@ 218 218 * code list name 219 219 * code values and descriptions 220 220 221 -Definition of data flow definitions. Two (or more) partners performing data exchanges in a certain context need to agree on: 219 +Definition of data flow definitions. Two (or more) partners performing data exchanges in a certain context need to agree on: 222 222 223 223 * the list of data set identifiers they will be using; 224 224 * for each data flow: ... ... @@ -225,13 +225,11 @@ 225 225 * its content and description 226 226 * the relevant DSD that defines the structure of the data reported or disseminated according the the dataflow definition 227 227 228 - ====3.4.1.3 Exchanging Attributes====226 +**3.4.1.3 Exchanging Attributes** 229 229 230 - =====//3.4.1.3.1 Attributes on series, sibling and data set level //=====228 +**//3.4.1.3.1 Attributes on series, sibling and data set level //**//Static properties//. 231 231 232 -//Static properties//. 233 - 234 -* Upon creation of a series the sender has to provide to the receiver values for all mandatory attributes. In case they are available, values for conditional attributes should also be provided. Whereas initially this information may be provided by means other than SDMX-ML or SDMX-EDI messages (e.g. paper, telephone) it is expected that partner institutions will be in a position to provide this information in SDMX-ML or SDMX-EDI format over time. 230 +* Upon creation of a series the sender has to provide to the receiver values for all mandatory attributes. In case they are available, values for conditional attributes should also be provided. Whereas initially this information may be provided by means other than SDMX-ML or SDMX-EDI messages (e.g. paper, telephone) it is expected that partner institutions will be in a position to provide this information in SDMX-ML or SDMX-EDI format over time. 235 235 * A centre may agree with its data exchange partners special procedures for authorising the setting of attributes' initial values. 236 236 * Attribute values at a data set level are set and maintained exclusively by the centre administrating the exchanged data set. 237 237 ... ... @@ -238,7 +238,7 @@ 238 238 //Communication of changes// to the centre. 239 239 240 240 * Following the creation of a series, the attribute values do not have to be reported again by senders, as long as they do not change. 241 -* Whenever changes in attribute values for a series (or sibling group) occur, the reporting institutions should report either all attribute values again (this is the recommended option) or only the attribute values which have changed. This applies both to the mandatory and the conditional attributes. For example, if a previously reported value for a conditional attribute is no longer valid, this has to be reported to the centre. 237 +* Whenever changes in attribute values for a series (or sibling group) occur, the reporting institutions should report either all attribute values again (this is the recommended option) or only the attribute values which have changed. This applies both to the mandatory and the conditional attributes. For example, if a previously reported value for a conditional attribute is no longer valid, this has to be reported to the centre. 242 242 * A centre may agree with its data exchange partners special procedures for authorising modifications in the attribute values. 243 243 244 244 Communication of observation level attributes “observation status”, "observation confidentiality", "observation pre-break". ... ... @@ -247,21 +247,21 @@ 247 247 * If the “observation status” changes and the observation remains unchanged, both components would have to be reported. 248 248 * For Data Structure Definitions having also the observation level attributes “observation confidentiality” and "observation pre-break" defined, this rule applies to these attribute as well: if an institution receives from another institution an observation with an observation status attribute only attached, this means that the associated observation confidentiality and prebreak observation attributes either never existed or from now they do not have a value for this observation. 249 249 250 -=== 3.4.2 Best Practices for Batch Data Exchange === 246 +==== 3.4.2 Best Practices for Batch Data Exchange ==== 251 251 252 - ====3.4.2.1 Introduction====248 +**3.4.2.1 Introduction** 253 253 254 254 Batch data exchange is the exchange and maintenance of entire databases between counterparties. It is an activity that often employs SDMX-EDI formats, and might also use the SDMX-ML DSD-specific data set. The following points apply equally to both formats. 255 255 256 - ====3.4.2.2 Positioning of the Dimension "Frequency"====252 +**3.4.2.2 Positioning of the Dimension "Frequency"** 257 257 258 258 The position of the “frequency” dimension is unambiguously identified in the data structure definition. Moreover, most central institutions devising structural definitions have decided to assign to this dimension the first position in the key structure. This facilitates the easy identification of this dimension, something that it is necessary to frequency's crucial role in several database systems and in attaching attributes at the “sibling” group level. 259 259 260 - ====3.4.2.3 Identification of Data Structure Definitions (DSDs)====256 +**3.4.2.3 Identification of Data Structure Definitions (DSDs)** 261 261 262 262 In order to facilitate the easy and immediate recognition of the structural definition maintenance agency that defined a data structure definition, most central institutions devising structural definitions use the first characters of the data structure definition identifiers to identify their institution: e.g. BIS_EER, EUROSTAT_BOP_01, ECB_BOP1, etc. 263 263 264 - ====3.4.2.4 Identification of the Data Flows====260 +**3.4.2.4 Identification of the Data Flows** 265 265 266 266 In order to facilitate the easy and immediate recognition of the institution administrating a data flow definitions, many central institutions prefer to use the first characters of the data flow definition identifiers to identify their institution: e.g. BIS_EER, ECB_BOP1, ECB_BOP1, etc. Note that in GESMES/TS the Data Set plays the role of the data flow definition (see //DataSet //in the SDMX-IM//)//. 267 267 ... ... @@ -269,7 +269,7 @@ 269 269 270 270 Note that the role of the Data Flow (called //DataflowDefintion// in the model) and Data Set is very specific in the model, and the terminology used may not be the same as used in all organisations, and specifically the term Data Set is used differently in SDMX than in GESMES/TS. Essentially the GESMES/TS term "Data Set" is, in SDMX, the "Dataflow Definition" whist the term "Data Set" in SDMX is used to describe the "container" for an instance of the data. 271 271 272 - ====3.4.2.5 Special Issues====268 +**3.4.2.5 Special Issues** 273 273 274 274 ===== 3.4.2.5.1 "Frequency" related issues ===== 275 275 ... ... @@ -280,9 +280,10 @@ 280 280 281 281 **//Tick data.//** The issue of data collected at irregular intervals at a higher than daily frequency (e.g. tick-by-tick data) is not discussed here either. However, for data exchange purposes, such series can already be exchanged in the SDMX-EDI format by using the option to send observations with the associated time stamp. 282 282 279 + 283 283 = 4 General Notes for Implementers = 284 284 285 -This section discusses a number of topics other than the exchange of data sets in SDMX-ML and SDMX-EDI. Supported only in SDMX-ML, these topics include the use of the reference metadata mechanism in SDMX, the use of Structure Sets and Reporting Taxonomies, the use of Processes, a discussion of time and data-typing, and some of the conventional mechanisms within the SDMX-ML Structure message regarding versioning and external referencing. 282 +This section discusses a number of topics other than the exchange of data sets in SDMX-ML and SDMX-EDI. Supported only in SDMX-ML, these topics include the use of the reference metadata mechanism in SDMX, the use of Structure Sets and Reporting Taxonomies, the use of Processes, a discussion of time and data-typing, and some of the conventional mechanisms within the SDMX-ML Structure message regarding versioning and external referencing. 286 286 287 287 This section does not go into great detail on these topics, but provides a useful overview of these features to assist implementors in further use of the parts of the specification which are relevant to them. 288 288 ... ... @@ -290,31 +290,39 @@ 290 290 291 291 There are several different representations in SDMX-ML, taken from XML Schemas and common programming languages. The table below describes the various representations which are found in SDMX-ML, and their equivalents. 292 292 293 -(% style="width:912.294px" %) 294 -|(% style="width:172px" %)**SDMX-ML Data Type**|(% style="width:204px" %)**XML Schema Data Type**|(% style="width:189px" %)**.NET Framework Type**|(% style="width:342px" %)((( 295 -**Java Data Type ** 290 +|**SDMX-ML Data Type**|**XML Schema Data Type**|**.NET Framework Type**|((( 291 +**Java Data Type** 292 + 293 +**~ ** 296 296 ))) 297 -|(% style="width:172px" %)String|(% style="width:204px" %)xsd:string|(% style="width:189px" %)System.String|(% style="width:342px" %)java.lang.String 298 -|(% style="width:172px" %)Big Integer|(% style="width:204px" %)xsd:integer|(% style="width:189px" %)System.Decimal|(% style="width:342px" %)java.math.BigInteg er 299 -|(% style="width:172px" %)Integer|(% style="width:204px" %)xsd:int|(% style="width:189px" %)System.Int32|(% style="width:342px" %)int 300 -|(% style="width:172px" %)Long|(% style="width:204px" %)xsd.long|(% style="width:189px" %)System.Int64|(% style="width:342px" %)long 301 -|(% style="width:172px" %)Short|(% style="width:204px" %)xsd:short|(% style="width:189px" %)System.Int16|(% style="width:342px" %)short 302 -|(% style="width:172px" %)Decimal|(% style="width:204px" %)xsd:decimal|(% style="width:189px" %)System.Decimal|(% style="width:342px" %)java.math.BigDecim al 303 -|(% style="width:172px" %)Float|(% style="width:204px" %)xsd:float|(% style="width:189px" %)System.Single|(% style="width:342px" %)float 304 -|(% style="width:172px" %)Double|(% style="width:204px" %)xsd:double|(% style="width:189px" %)System.Double|(% style="width:342px" %)double 305 -|(% style="width:172px" %)Boolean|(% style="width:204px" %)xsd:boolean|(% style="width:189px" %)System.Boolean|(% style="width:342px" %)boolean 306 -|(% style="width:172px" %)URI|(% style="width:204px" %)xsd:anyURI|(% style="width:189px" %)System.Uri|(% style="width:342px" %)Java.net.URI or java.lang.String 307 -|(% style="width:172px" %)DateTime|(% style="width:204px" %)xsd:dateTime|(% style="width:189px" %)System.DateTime|(% style="width:342px" %)javax.xml.datatype .XMLGregorianCalen dar 308 -|(% style="width:172px" %)Time|(% style="width:204px" %)xsd:time|(% style="width:189px" %)System.DateTime|(% style="width:342px" %)javax.xml.datatype .XMLGregorianCalen dar 309 -|(% style="width:172px" %)GregorianYear|(% style="width:204px" %)xsd:gYear|(% style="width:189px" %)System.DateTime|(% style="width:342px" %)javax.xml.datatype .XMLGregorianCalen dar 310 -|(% style="width:172px" %)GregorianMonth|(% style="width:204px" %)xsd:gYearMonth|(% style="width:189px" %)System.DateTime|(% style="width:342px" %)javax.xml.datatype .XMLGregorianCalen dar 311 -|(% style="width:172px" %)GregorianDay|(% style="width:204px" %)xsd:date|(% style="width:189px" %)System.DateTime|(% style="width:342px" %)javax.xml.datatype .XMLGregorianCalen dar 312 -|(% style="width:172px" %)((( 313 -Day, MonthDay, Month 314 -)))|(% style="width:204px" %)xsd:g*|(% style="width:189px" %)System.DateTime|(% style="width:342px" %)javax.xml.datatype .XMLGregorianCalen dar 315 -|(% style="width:172px" %)Duration|(% style="width:204px" %)xsd:duration |(% style="width:189px" %)System.TimeSpa|(% style="width:342px" %)javax.xml.datatype 316 -|(% style="width:172px" %) |(% style="width:204px" %) |(% style="width:189px" %)n|(% style="width:342px" %).Duration 295 +|String|xsd:string|System.String|java.lang.String 296 +|Big Integer|xsd:integer|System.Decimal|java.math.BigInteg er 297 +|Integer|xsd:int|System.Int32|int 298 +|Long|xsd.long|System.Int64|long 299 +|Short|xsd:short|System.Int16|short 300 +|Decimal|xsd:decimal|System.Decimal|java.math.BigDecim al 301 +|Float|xsd:float|System.Single|float 302 +|Double|xsd:double|System.Double|double 303 +|Boolean|xsd:boolean|System.Boolean|boolean 304 +|URI|xsd:anyURI|System.Uri|Java.net.URI or java.lang.String 305 +|DateTime|xsd:dateTime|System.DateTim e|javax.xml.datatype .XMLGregorianCalen dar 306 +|Time|xsd:time|System.DateTim e|javax.xml.datatype .XMLGregorianCalen dar 307 +|GregorianYear|xsd:gYear|System.DateTim e|javax.xml.datatype .XMLGregorianCalen dar 308 +|GregorianMont h|xsd:gYearMont h|System.DateTim e|javax.xml.datatype .XMLGregorianCalen dar 309 +|GregorianDay|xsd:date|System.DateTim e|javax.xml.datatype .XMLGregorianCalen dar 310 +|((( 311 +Day, 317 317 313 +MonthDay, Month 314 +)))|xsd:g*|System.DateTim e|javax.xml.datatype .XMLGregorianCalen dar 315 +|Duration|xsd:duration |System.TimeSpa|javax.xml.datatype 316 +|**SDMX-ML Data Type**|**XML Schema Data Type**|**.NET Framework Type**|((( 317 +**Java Data Type** 318 + 319 +**~ ** 320 +))) 321 +| | |n|.Duration 322 + 318 318 There are also a number of SDMX-ML data types which do not have these direct correspondences, often because they are composite representations or restrictions of a broader data type. For most of these, there are simple types which can be referenced from the SDMX schemas, for others a derived simple type will be necessary: 319 319 320 320 * AlphaNumeric (common:AlphaNumericType, string which only allows A-z and 0-9) ... ... @@ -325,7 +325,7 @@ 325 325 * ExclusiveValueRange (xs:decimal with the minValue and maxValue facets supplying the bounds) 326 326 * Incremental (xs:decimal with a specified interval; the interval is typically enforced outside of the XML validation) 327 327 * TimeRange (common:TimeRangeType, start DateTime + Duration,) 328 -* ObservationalTimePeriod (common: ObservationalTimePeriodType, a union of StandardTimePeriod and TimeRange). 333 +* ObservationalTimePeriod (common: ObservationalTimePeriodType, a union of StandardTimePeriod and TimeRange). 329 329 * StandardTimePeriod (common: StandardTimePeriodType, a union of BasicTimePeriod and TimeRange). 330 330 * BasicTimePeriod (common: BasicTimePeriodType, a union of GregorianTimePeriod and DateTime) 331 331 * GregorianTimePeriod (common:GregorianTimePeriodType, a union of GregorianYear, GregorianMonth, and GregorianDay) ... ... @@ -340,8 +340,10 @@ 340 340 * KeyValues (common:DataKeyType) 341 341 * IdentifiableReference (types for each identifiable object) 342 342 * DataSetReference (common:DataSetReferenceType) 343 -* AttachmentConstraintReference (common:AttachmentConstraintReferenceType)348 +* AttachmentConstraintReference 344 344 350 +(common:AttachmentConstraintReferenceType) 351 + 345 345 Data types also have a set of facets: 346 346 347 347 * isSequence = true | false (indicates a sequentially increasing value) ... ... @@ -363,7 +363,7 @@ 363 363 364 364 == 4.2 Time and Time Format == 365 365 366 -=== 4.2.1 Introduction === 373 +==== 4.2.1 Introduction ==== 367 367 368 368 First, it is important to recognize that most observation times are a period. SDMX specifies precisely how Time is handled. 369 369 ... ... @@ -371,47 +371,50 @@ 371 371 372 372 The hierarchy of time formats is as follows (**bold** indicates a category which is made up of multiple formats, //italic// indicates a distinct format): 373 373 374 -* **Observational Time Period** 375 -** **Standard Time Period** 376 -*** **Basic Time Period** 377 -**** **Gregorian Time Period** 378 -**** //Date Time// 379 -*** **Reporting Time Period** 380 -** //Time Range// 381 +* **Observational Time Period **o **Standard Time Period** 381 381 383 + § **Basic Time Period** 384 + 385 +* **Gregorian Time Period** 386 +* //Date Time// 387 + 388 +§ **Reporting Time Period **o //Time Range// 389 + 382 382 The details of these time period categories and of the distinct formats which make them up are detailed in the sections to follow. 383 383 384 -=== 4.2.2 Observational Time Period === 392 +==== 4.2.2 Observational Time Period ==== 385 385 386 386 This is the superset of all time representations in SDMX. This allows for time to be expressed as any of the allowable formats. 387 387 388 -=== 4.2.3 Standard Time Period === 396 +==== 4.2.3 Standard Time Period ==== 389 389 390 390 This is the superset of any predefined time period or a distinct point in time. A time period consists of a distinct start and end point. If the start and end of a period are expressed as date instead of a complete date time, then it is implied that the start of the period is the beginning of the start day (i.e. 00:00:00) and the end of the period is the end of the end day (i.e. 23:59:59). 391 391 392 -=== 4.2.4 Gregorian Time Period === 400 +==== 4.2.4 Gregorian Time Period ==== 393 393 394 394 A Gregorian time period is always represented by a Gregorian year, year-month, or day. These are all based on ISO 8601 dates. The representation in SDMX-ML messages and the period covered by each of the Gregorian time periods are as follows: 395 395 396 -**Gregorian Year:** 404 +**Gregorian Year:** 405 + 397 397 Representation: xs:gYear (YYYY) 398 -Period: the start of January 1 to the end of December 31 399 399 400 -**Gregorian Year Month**: 408 +Period: the start of January 1 to the end of December 31 **Gregorian Year Month**: 409 + 401 401 Representation: xs:gYearMonth (YYYY-MM) 402 -Period: the start of the first day of the month to end of the last day of the month 403 403 404 -**Gregorian Day**: 412 +Period: the start of the first day of the month to end of the last day of the month **Gregorian Day**: 413 + 405 405 Representation: xs:date (YYYY-MM-DD) 415 + 406 406 Period: the start of the day (00:00:00) to the end of the day (23:59:59) 407 407 408 -=== 4.2.5 Date Time === 418 +==== 4.2.5 Date Time ==== 409 409 410 410 This is used to unambiguously state that a date-time represents an observation at a single point in time. Therefore, if one wants to use SDMX for data which is measured at a distinct point in time rather than being reported over a period, the date-time representation can be used. 411 411 412 -Representation: xs:dateTime (YYYY-MM-DDThh:mm:ss)[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[1~]^^>>path:#_ftn1]]422 +Representation: xs:dateTime (YYYY-MM-DDThh:mm:ss)[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[1~]^^>>path:#_ftn1]] 413 413 414 -=== 4.2.6 Standard Reporting Period === 424 +==== 4.2.6 Standard Reporting Period ==== 415 415 416 416 Standard reporting periods are periods of time in relation to a reporting year. Each of these standard reporting periods has a duration (based on the ISO 8601 definition) associated with it. The general format of a reporting period is as follows: 417 417 ... ... @@ -418,52 +418,75 @@ 418 418 [REPORTING_YEAR]-[PERIOD_INDICATOR][PERIOD_VALUE] 419 419 420 420 Where: 431 + 421 421 REPORTING_YEAR represents the reporting year as four digits (YYYY) PERIOD_INDICATOR identifies the type of period which determines the duration of the period 433 + 422 422 PERIOD_VALUE indicates the actual period within the year 423 423 424 424 The following section details each of the standard reporting periods defined in SDMX: 425 425 426 -**Reporting Year**: 427 -Period Indicator: A 438 +**Reporting Year**: 439 + 440 + Period Indicator: A 441 + 428 428 Period Duration: P1Y (one year) 443 + 429 429 Limit per year: 1 430 -Representation: common:ReportingYearType (YYYY-A1, e.g. 2000-A1) 431 431 432 -**Reporting Semester:** 433 -Period Indicator: S 446 +Representation: common:ReportingYearType (YYYY-A1, e.g. 2000-A1) **Reporting Semester:** 447 + 448 + Period Indicator: S 449 + 434 434 Period Duration: P6M (six months) 451 + 435 435 Limit per year: 2 436 -Representation: common:ReportingSemesterType (YYYY-Ss, e.g. 2000-S2) 437 437 438 -**Reporting Trimester:** 439 -Period Indicator: T 454 +Representation: common:ReportingSemesterType (YYYY-Ss, e.g. 2000-S2) **Reporting Trimester:** 455 + 456 + Period Indicator: T 457 + 440 440 Period Duration: P4M (four months) 459 + 441 441 Limit per year: 3 442 -Representation: common:ReportingTrimesterType (YYYY-Tt, e.g. 2000-T3) 443 443 444 -**Reporting Quarter:** 445 -Period Indicator: Q 462 +Representation: common:ReportingTrimesterType (YYYY-Tt, e.g. 2000-T3) **Reporting Quarter:** 463 + 464 + Period Indicator: Q 465 + 446 446 Period Duration: P3M (three months) 467 + 447 447 Limit per year: 4 448 -Representation: common:ReportingQuarterType (YYYY-Qq, e.g. 2000-Q4) 449 449 450 -**Reporting Month**: 470 +Representation: common:ReportingQuarterType (YYYY-Qq, e.g. 2000-Q4) **Reporting Month**: 471 + 451 451 Period Indicator: M 473 + 452 452 Period Duration: P1M (one month) 475 + 453 453 Limit per year: 1 477 + 454 454 Representation: common:ReportingMonthType (YYYY-Mmm, e.g. 2000-M12) Notes: The reporting month is always represented as two digits, therefore 1-9 are 0 padded (e.g. 01). This allows the values to be sorted chronologically using textual sorting methods. 455 455 456 456 **Reporting Week**: 481 + 457 457 Period Indicator: W 483 + 458 458 Period Duration: P7D (seven days) 485 + 459 459 Limit per year: 53 487 + 460 460 Representation: common:ReportingWeekType (YYYY-Www, e.g. 2000-W53) 461 -Notes: There are either 52 or 53 weeks in a reporting year. This is based on the ISO 8601 definition of a week (Monday - Saturday), where the first week of a reporting year is defined as the week with the first Thursday on or after the reporting year start day.[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[2~]^^>>path:#_ftn2]](%%) The reporting week is always represented as two digits, therefore 1-9 are 0 padded (e.g. 01). This allows the values to be sorted chronologically using textual sorting methods. 462 462 490 +Notes: There are either 52 or 53 weeks in a reporting year. This is based on the ISO 8601 definition of a week (Monday - Saturday), where the first week of a reporting year is defined as the week with the first Thursday on or after the reporting year start day.[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[2~]^^>>path:#_ftn2]](%%) The reporting week is always represented as two digits, therefore 1-9 are 0 padded (e.g. 01). This allows the values to be sorted chronologically using textual sorting methods. 491 + 463 463 **Reporting Day**: 493 + 464 464 Period Indicator: D 495 + 465 465 Period Duration: P1D (one day) 497 + 466 466 Limit per year: 366 499 + 467 467 Representation: common:ReportingDayType (YYYY-Dddd, e.g. 2000-D366) Notes: There are either 365 or 366 days in a reporting year, depending on whether the reporting year includes leap day (February 29). The reporting day is always represented as three digits, therefore 1-99 are 0 padded (e.g. 001). 468 468 469 469 This allows the values to be sorted chronologically using textual sorting methods. ... ... @@ -474,109 +474,143 @@ 474 474 475 475 Since the duration and the reporting year start day are known for any reporting period, it is possible to relate any reporting period to a distinct calendar period. The actual Gregorian calendar period covered by the reporting period can be computed as follows (based on the standard format of [REPROTING_YEAR][PERIOD_INDICATOR][PERIOD_VALUE] and the reporting year start day as [REPORTING_YEAR_START_DAY]): 476 476 477 -**~1. Determine [REPORTING_YEAR_BASE]:** 510 +1. **Determine [REPORTING_YEAR_BASE]:** 511 + 478 478 Combine [REPORTING_YEAR] of the reporting period value (YYYY) with [REPORTING_YEAR_START_DAY] (MM-DD) to get a date (YYYY-MM-DD). 513 + 479 479 This is the [REPORTING_YEAR_START_DATE] 480 -**a) If the [PERIOD_INDICATOR] is W: 481 -~1. If [REPORTING_YEAR_START_DATE] is a Friday, Saturday, or Sunday:** 515 + 516 +**a) If the [PERIOD_INDICATOR] is W:** 517 + 518 +1. 519 +11. 520 +111. 521 +1111. **If [REPORTING_YEAR_START_DATE] is a Friday, Saturday, or Sunday:** 522 + 482 482 Add^^3^^ (P3D, P2D, or P1D respectively) to the [REPORTING_YEAR_START_DATE]. The result is the [REPORTING_YEAR_BASE]. 483 483 484 -2. **If [REPORTING_YEAR_START_DATE] is a Monday, Tuesday, Wednesday, or Thursday:** 525 +1. 526 +11. 527 +111. 528 +1111. **If [REPORTING_YEAR_START_DATE] is a Monday, Tuesday, Wednesday, or Thursday:** 529 + 485 485 Add^^3^^ (P0D, -P1D, -P2D, or -P3D respectively) to the [REPORTING_YEAR_START_DATE]. The result is the [REPORTING_YEAR_BASE]. 486 -b) **Else:** 487 -The [REPORTING_YEAR_START_DATE] is the [REPORTING_YEAR_BASE] 488 488 489 -** 2. Determine [PERIOD_DURATION]:**532 +b) **Else:** 490 490 491 -a) If the [PERIOD_INDICATOR] is A, the [PERIOD_DURATION] is P1Y. 492 -b) If the [PERIOD_INDICATOR] is S, the [PERIOD_DURATION] is P6M. 493 -c) If the [PERIOD_INDICATOR] is T, the [PERIOD_DURATION] is P4M. 494 -d) If the [PERIOD_INDICATOR] is Q, the [PERIOD_DURATION] is P3M. 495 -e) If the [PERIOD_INDICATOR] is M, the [PERIOD_DURATION] is P1M. 496 -f) If the [PERIOD_INDICATOR] is W, the [PERIOD_DURATION] is P7D. 497 -g) If the [PERIOD_INDICATOR] is D, the [PERIOD_DURATION] is P1D. 534 +The [REPORTING_YEAR_START_DATE] is the [REPORTING_YEAR_BASE]. 498 498 499 -**3. Determine [PERIOD_START]:** 500 -Subtract one from the [PERIOD_VALUE] and multiply this by the [PERIOD_DURATION]. Add[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[3~]^^>>path:#_ftn3]](%%) this to the [REPORTING_YEAR_BASE]. The result is the [PERIOD_START]. 536 +1. **Determine [PERIOD_DURATION]:** 537 +11. 538 +111. If the [PERIOD_INDICATOR] is A, the [PERIOD_DURATION] is P1Y. 539 +111. If the [PERIOD_INDICATOR] is S, the [PERIOD_DURATION] is P6M. 540 +111. If the [PERIOD_INDICATOR] is T, the [PERIOD_DURATION] is P4M. 541 +111. If the [PERIOD_INDICATOR] is Q, the [PERIOD_DURATION] is P3M. 542 +111. If the [PERIOD_INDICATOR] is M, the [PERIOD_DURATION] is P1M. 543 +111. If the [PERIOD_INDICATOR] is W, the [PERIOD_DURATION] is P7D. 544 +111. If the [PERIOD_INDICATOR] is D, the [PERIOD_DURATION] is P1D. 545 +1. **Determine [PERIOD_START]:** 501 501 502 -**4. Determine the [PERIOD_END]:** 547 +Subtract one from the [PERIOD_VALUE] and multiply this by the [PERIOD_DURATION]. Add[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[3~]^^>>path:#_ftn3]](%%) this to the [REPORTING_YEAR_BASE]. The result is the [PERIOD_START]. 548 + 549 +1. **Determine the [PERIOD_END]:** 550 + 503 503 Multiply the [PERIOD_VALUE] by the [PERIOD_DURATION]. Add^^3^^ this to the [REPORTING_YEAR_BASE] add^^3^^ -P1D. The result is the [PERIOD_END]. 504 504 505 505 For all of these ranges, the bounds include the beginning of the [PERIOD_START] (i.e. 00:00:00) and the end of the [PERIOD_END] (i.e. 23:59:59). 506 506 507 -**Examples:** 555 +**Examples: ** 508 508 509 509 **2010-Q2, REPORTING_YEAR_START_DAY = ~-~-07-01 (July 1)** 558 + 510 510 ~1. [REPORTING_YEAR_START_DATE] = 2010-07-01 560 + 511 511 b) [REPORTING_YEAR_BASE] = 2010-07-01 512 -[PERIOD_DURATION] = P3M 513 -(2-1) * P3M = P3M 562 + 563 +1. [PERIOD_DURATION] = P3M 564 +1. (2-1) * P3M = P3M 565 + 514 514 2010-07-01 + P3M = 2010-10-01 567 + 515 515 [PERIOD_START] = 2010-10-01 569 + 516 516 4. 2 * P3M = P6M 571 + 517 517 2010-07-01 + P6M = 2010-13-01 = 2011-01-01 573 + 518 518 2011-01-01 + -P1D = 2010-12-31 575 + 519 519 [PERIOD_END] = 2011-12-31 520 520 521 521 The actual calendar range covered by 2010-Q2 (assuming the reporting year begins July 1) is 2010-10-01T00:00:00/2010-12-31T23:59:59 522 522 523 523 **2011-W36, REPORTING_YEAR_START_DAY = ~-~-07-01 (July 1)** 581 + 524 524 ~1. [REPORTING_YEAR_START_DATE] = 2010-07-01 583 + 525 525 a) 2011-07-01 = Friday 585 + 526 526 2011-07-01 + P3D = 2011-07-04 587 + 527 527 [REPORTING_YEAR_BASE] = 2011-07-04 528 -2. [PERIOD_DURATION] = P7D 529 -3. (36-1) * P7D = P245D 589 + 590 +1. [PERIOD_DURATION] = P7D 591 +1. (36-1) * P7D = P245D 592 + 530 530 2011-07-04 + P245D = 2012-03-05 594 + 531 531 [PERIOD_START] = 2012-03-05 596 + 532 532 4. 36 * P7D = P252D 598 + 533 533 2011-07-04 + P252D =2012-03-12 600 + 534 534 2012-03-12 + -P1D = 2012-03-11 602 + 535 535 [PERIOD_END] = 2012-03-11 536 536 537 537 The actual calendar range covered by 2011-W36 (assuming the reporting year begins July 1) is 2012-03-05T00:00:00/2012-03-11T23:59:59 538 538 539 -=== 4.2.7 Distinct Range === 607 +==== 4.2.7 Distinct Range ==== 540 540 541 541 In the case that the reporting period does not fit into one of the prescribe periods above, a distinct time range can be used. The value of these ranges is based on the ISO 8601 time interval format of start/duration. Start can be expressed as either an ISO 8601 date or a date-time, and duration is expressed as an ISO 8601 duration. However, the duration can only be postive. 542 542 543 -=== 4.2.8 Time Format === 611 +==== 4.2.8 Time Format ==== 544 544 545 -In version 2.0 of SDMX there is a recommendation to use the time format attribute to gives additional information on the way time is represented in the message. Following an appraisal of its usefulness this is no longer required. However, it is still possible, if required , to include the time format attribute in SDMX-ML. 613 +In version 2.0 of SDMX there is a recommendation to use the time format attribute to gives additional information on the way time is represented in the message. Following an appraisal of its usefulness this is no longer required. However, it is still possible, if required , to include the time format attribute in SDMX-ML. 546 546 547 -(% style="width:716.835px" %) 548 -|(% style="width:197px" %)**Code**|(% style="width:517px" %)**Format** 549 -|(% style="width:197px" %)**OTP**|(% style="width:517px" %)Observational Time Period: Superset of all SDMX time formats (Gregorian Time Period, Reporting Time Period, and Time Range) 550 -|(% style="width:197px" %)**STP**|(% style="width:517px" %)Standard Time Period: Superset of Gregorian and Reporting Time Periods 551 -|(% style="width:197px" %)**GTP**|(% style="width:517px" %)Superset of all Gregorian Time Periods and date-time 552 -|(% style="width:197px" %)**RTP**|(% style="width:517px" %)Superset of all Reporting Time Periods 553 -|(% style="width:197px" %)**TR**|(% style="width:517px" %)Time Range: Start time and duration (YYYY-MMDD(Thh:mm:ss)?/<duration>) 554 -|(% style="width:197px" %)**GY**|(% style="width:517px" %)Gregorian Year (YYYY) 555 -|(% style="width:197px" %)**GTM**|(% style="width:517px" %)Gregorian Year Month (YYYY-MM) 556 -|(% style="width:197px" %)**GD**|(% style="width:517px" %)Gregorian Day (YYYY-MM-DD) 557 -|(% style="width:197px" %)**DT**|(% style="width:517px" %)Distinct Point: date-time (YYYY-MM-DDThh:mm:ss) 558 -|(% style="width:197px" %)**RY**|(% style="width:517px" %)Reporting Year (YYYY-A1) 559 -|(% style="width:197px" %)**RS**|(% style="width:517px" %)Reporting Semester (YYYY-Ss) 560 -|(% style="width:197px" %)**RT**|(% style="width:517px" %)Reporting Trimester (YYYY-Tt) 561 -|(% style="width:197px" %)**RQ**|(% style="width:517px" %)Reporting Quarter (YYYY-Qq) 562 -|(% style="width:197px" %)**RM**|(% style="width:517px" %)Reporting Month (YYYY-Mmm) 563 -|(% style="width:197px" %)**Code**|(% style="width:517px" %)**Format** 564 -|(% style="width:197px" %)**RW**|(% style="width:517px" %)Reporting Week (YYYY-Www) 565 -|(% style="width:197px" %)**RD**|(% style="width:517px" %)Reporting Day (YYYY-Dddd) 615 +|**Code**|**Format** 616 +|**OTP**|Observational Time Period: Superset of all SDMX time formats (Gregorian Time Period, Reporting Time Period, and Time Range) 617 +|**STP**|Standard Time Period: Superset of Gregorian and Reporting Time Periods 618 +|**GTP**|Superset of all Gregorian Time Periods and date-time 619 +|**RTP**|Superset of all Reporting Time Periods 620 +|**TR**|Time Range: Start time and duration (YYYY-MMDD(Thh:mm:ss)?/<duration>) 621 +|**GY**|Gregorian Year (YYYY) 622 +|**GTM**|Gregorian Year Month (YYYY-MM) 623 +|**GD**|Gregorian Day (YYYY-MM-DD) 624 +|**DT**|Distinct Point: date-time (YYYY-MM-DDThh:mm:ss) 625 +|**RY**|Reporting Year (YYYY-A1) 626 +|**RS**|Reporting Semester (YYYY-Ss) 627 +|**RT**|Reporting Trimester (YYYY-Tt) 628 +|**RQ**|Reporting Quarter (YYYY-Qq) 629 +|**RM**|Reporting Month (YYYY-Mmm) 630 +|**Code**|**Format** 631 +|**RW**|Reporting Week (YYYY-Www) 632 +|**RD**|Reporting Day (YYYY-Dddd) 566 566 567 -**Table 1: SDMX-ML Time Format Codes** 634 + **Table 1: SDMX-ML Time Format Codes** 568 568 569 -=== 4.2.9 Transformation between SDMX-ML and SDMX-EDI === 636 +==== 4.2.9 Transformation between SDMX-ML and SDMX-EDI ==== 570 570 571 571 When converting SDMX-ML data structure definitions to SDMX-EDI data structure definitions, only the identifier of the time format attribute will be retained. The representation of the attribute will be converted from the SDMX-ML format to the fixed SDMX-EDI code list. If the SDMX-ML data structure definition does not define a time format attribute, then one will be automatically created with the identifier "TIME_FORMAT". 572 572 573 -When converting SDMX-ML data to SDMX-EDI, the source time format attribute will be irrelevant. Since the SDMX-ML time representation types are not ambiguous, the target time format can be determined from the source time value directly. For example, if the SDMX-ML time is 2000-Q2 the SDMX-EDI format will always be 608/708 (depending on whether the target series contains one observation or a range of observations) .640 +When converting SDMX-ML data to SDMX-EDI, the source time format attribute will be irrelevant. Since the SDMX-ML time representation types are not ambiguous, the target time format can be determined from the source time value directly. For example, if the SDMX-ML time is 2000-Q2 the SDMX-EDI format will always be 608/708 (depending on whether the target series contains one observation or a range of observations) 574 574 575 575 When converting a data structure definition originating in SDMX-EDI, the time format attribute should be ignored, as it serves no purpose in SDMX-ML. 576 576 577 577 When converting data from SDMX-EDI to SDMX-ML, the source time format is only necessary to determine the format of the target time value. For example, a source time format of will result in a target time in the format YYYY-Ss whereas a source format of will result in a target time value in the format YYYY-Qq. 578 578 579 -=== 4.2.10 Time Zones === 646 +==== 4.2.10 Time Zones ==== 580 580 581 581 In alignment with ISO 8601, SDMX allows the specification of a time zone on all time periods and on the reporting year start day. If a time zone is provided on a reporting year start day, then the same time zone (or none) should be reported for each reporting time period. If the reporting year start day and the reporting period time zone differ, the time zone of the reporting period will take precedence. Examples of each format with time zones are as follows (time zone indicated in bold): 582 582 ... ... @@ -597,39 +597,40 @@ 597 597 598 598 According to ISO 8601, a date without a time-zone is considered "local time". SDMX assumes that local time is that of the sender of the message. In this version of SDMX, an optional field is added to the sender definition in the header for specifying a time zone. This field has a default value of 'Z' (UTC). This determination of local time applies for all dates in a message. 599 599 600 -=== 4.2.11 Representing Time Spans Elsewhere === 667 +==== 4.2.11 Representing Time Spans Elsewhere ==== 601 601 602 602 It has been possible since SDMX 2.0 for a Component to specify a representation of a time span. Depending on the format of the data message, this resulted in either an element with 2 XML attributes for holding the start time and the duration or two separate XML attributes based on the underlying Component identifier. For example if REF_PERIOD were given a representation of time span, then in the Compact data format, it would be represented by two XML attributes; REF_PERIODStartTime (holding the start) and REF_PERIOD (holding the duration). If a new simple type is introduced in the SDMX schemas that can hold ISO 8601 time intervals, then this will no longer be necessary. What was represented as this: 603 603 604 -<Series REF_PERIODStartTime="2000-01-01T00:00:00" REF_PERIOD="P2M"/> 671 + <Series REF_PERIODStartTime="2000-01-01T00:00:00" REF_PERIOD="P2M"/> 605 605 606 606 can now be represented with this: 607 607 608 608 <Series REF_PERIOD="2000-01-01T00:00:00/P2M"/> 609 609 610 -=== 4.2.12 Notes on Formats === 677 +==== 4.2.12 Notes on Formats ==== 611 611 612 612 There is no ambiguity in these formats so that for any given value of time, the category of the period (and thus the intended time period range) is always clear. It should also be noted that by utilizing the ISO 8601 format, and a format loosely based on it for the report periods, the values of time can easily be sorted chronologically without additional parsing. 613 613 614 -=== 4.2.13 Effect on Time Ranges === 681 +==== 4.2.13 Effect on Time Ranges ==== 615 615 616 616 All SDMX-ML data messages are capable of functioning in a manner similar to SDMX-EDI if the Dimension at the observation level is time: the time period for the first observation can be stated and the rest of the observations can omit the time value as it can be derived from the start time and the frequency. Since the frequency can be determined based on the actual format of the time value for everything but distinct points in time and time ranges, this makes is even simpler to process as the interval between time ranges is known directly from the time value. 617 617 618 -=== 4.2.14 Time in Query Messages === 685 +==== 4.2.14 Time in Query Messages ==== 619 619 620 620 When querying for time values, the value of a time parameter can be provided as any of the Observational Time Period formats and must be paired with an operator. In addition, an explicit value for the reporting year start day can be provided, or this can be set to "Any". This section will detail how systems processing query messages should interpret these parameters. 621 621 622 622 Fundamental to processing a time value parameter in a query message is understanding that all time periods should be handled as a distinct range of time. Since the time parameter in the query is paired with an operator, this is also effectively represents a distinct range of time. Therefore, a system processing the query must simply match the data where the time period for requested parameter is encompassed by the time period resulting from value of the query parameter. The following table details how the operators should be interpreted for any time period provided as a parameter. 623 623 624 -(% style="width:1024.29px" %) 625 -|(% style="width:238px" %)**Operator**|(% style="width:782px" %)**Rule** 626 -|(% style="width:238px" %)Greater Than|(% style="width:782px" %)Any data after the last moment of the period 627 -|(% style="width:238px" %)Less Than|(% style="width:782px" %)Any data before the first moment of the period 628 -|(% style="width:238px" %)Greater Than or Equal To|(% style="width:782px" %)((( 629 -Any data on or after the first moment of the period 691 +|**Operator**|**Rule** 692 +|Greater Than|Any data after the last moment of the period 693 +|Less Than|Any data before the first moment of the period 694 +|Greater Than or Equal To|((( 695 +Any data on or after the first moment of 696 + 697 +the period 630 630 ))) 631 -| (% style="width:238px" %)Less Than or Equal To|(% style="width:782px" %)Any data on or before the last moment of the period632 -| (% style="width:238px" %)Equal To|(% style="width:782px" %)Any data which falls on or after the first moment of the period and before or on the last moment of the period699 +|Less Than or Equal To|Any data on or before the last moment of the period 700 +|Equal To|Any data which falls on or after the first moment of the period and before or on the last moment of the period 633 633 634 634 Reporting Time Periods as query parameters are handled based on whether the value of the reportingYearStartDay XML attribute is an explicit month and day or "Any": 635 635 ... ... @@ -642,7 +642,9 @@ 642 642 **Examples:** 643 643 644 644 **Gregorian Period** 713 + 645 645 Query Parameter: Greater than 2010 715 + 646 646 Literal Interpretation: Any data where the start period occurs after 2010-1231T23:59:59. 647 647 648 648 Example Matches: ... ... @@ -660,11 +660,15 @@ 660 660 * 2010-D185 or later (reporting year start day ~-~-07-01 or later) 661 661 662 662 **Reporting Period with explicit start day** 733 + 663 663 Query Parameter: Greater than or equal to 2009-Q3, reporting year start day = "-07-01" 735 + 664 664 Literal Interpretation: Any data where the start period occurs on after 2010-0101T00:00:00 (Note that in this case 2009-Q3 is converted to the explicit date range of 2010-01-01/2010-03-31 because of the reporting year start day value). Example Matches: Same as previous example 665 665 666 666 **Reporting Period with "Any" start day** 739 + 667 667 Query Parameter: Greater than or equal to 2010-Q3, reporting year start day = "Any" 741 + 668 668 Literal Interpretation: Any data with a reporting period where the start period is on or after the start period of 2010-Q3 for the same reporting year start day, or and data where the start period is on or after 2010-07-01. Example Matches: 669 669 670 670 * 2011 or later ... ... @@ -676,10 +676,13 @@ 676 676 * 2010-T3 (any reporting year start day) 677 677 * 2010-Q3 or later (any reporting year start day) 678 678 * 2010-M07 or later (any reporting year start day) 679 -* 2010-W27 or later (reporting year start day ~-~-01-01){{footnote}}2010-Q3 (with a reporting year start day of --01-01) starts on 2010-07-01. This is day 4 of week 26, therefore the first week matched is week 27.{{/footnote}} 2010-D182 or later (reporting year start day ~-~-01-01) 680 -* 2010-W28 or later (reporting year start day ~-~-07-01){{footnote}}2010-Q3 (with a reporting year start day of --07-01) starts on 2011-01-01. This is day 6 of week 27, therefore the first week matched is week 28.{{/footnote}} 681 -* 2010-D185 or later (reporting year start day ~-~-07-01) 753 +* 2010-W27 or later (reporting year start day ~-~-01-01)^^4^^ 2010-D182 or later (reporting year start day ~-~-01-01) 754 +* 2010-W28 or later (reporting year start day ~-~-07-01)^^5^^ 682 682 756 +^^4^^ 2010-Q3 (with a reporting year start day of ~-~-01-01) starts on 2010-07-01. This is day 4 of week 26, therefore the first week matched is week 27. 757 + 758 + 2010-D185 or later (reporting year start day ~-~-07-01) 759 + 683 683 == 4.3 Structural Metadata Querying Best Practices == 684 684 685 685 When querying for structural metadata, the ability to state how references should be resolved is quite powerful. However, this mechanism is not always necessary and can create an undue burden on the systems processing the queries if it is not used properly. ... ... @@ -696,6 +696,8 @@ 696 696 697 697 This mechanism is an “early binding” one – everything with a versioned identity is a known quantity, and will not change. It is worth pointing out that in some cases relationships are essentially one-way references: an illustrative case is that of Categories. While a Category may be referenced by many dataflows and metadata flows, the addition of more references from flow objects does not version the Category. This is because the flows are not properties of the Categories – they merely make references to it. If the name of a Category changed, or its subCategories changed, then versioning would be necessary. 698 698 776 +^^5^^ 2010-Q3 (with a reporting year start day of ~-~-07-01) starts on 2011-01-01. This is day 6 of week 27, therefore the first week matched is week 28. 777 + 699 699 Versioning operates at the level of versionable and maintainable objects in the SDMX information model. If any of the children of objects at these levels change, then the objects themselves are versioned. 700 700 701 701 One area which is much impacted by this versioning scheme is the ability to reference external objects. With the many dependencies within the various structural objects in SDMX, it is useful to have a scheme for external referencing. This is done at the level of maintainable objects (DSDs, code lists, concept schemes, etc.) In an SDMX-ML Structure Message, whenever an “isExternalReference” attribute is set to true, then the application must resolve the address provided in the associated “uri” attribute and use the SDMX-ML Structure Message stored at that location for the full definition of the object in question. Alternately, if a registry “urn” attribute has been provided, the registry can be used to supply the full details of the object. ... ... @@ -718,13 +718,13 @@ 718 718 719 719 [[image:1747836776649-282.jpeg]] 720 720 721 -** Figure1: Schematic of the Metadata Structure Definition**800 +1. **1: Schematic of the Metadata Structure Definition** 722 722 723 723 The MSD comprises the specification of the object types to which metadata can be reported in a Metadata Set (Metadata Target(s)), and the Report Structure(s) comprising the Metadata Attributes that identify the Concept for which metadata may be reported in the Metadata Set. Importantly, one Report Structure references the Metadata Target for which it is relevant. One Report Structure can reference many Metadata Target i.e. the same Report Structure can be used for different target objects. 724 724 725 725 [[image:1747836776655-364.jpeg]] 726 726 727 -** Figure2: Example MSD showing Metadata Targets**806 +1. **2: Example MSD showing Metadata Targets** 728 728 729 729 Note that the SDMX-ML schemas have explicit XML elements for each identifiable object type because identifying, for instance, a Maintainable Object has different properties from an Identifiable Object which must also include the agencyId, version, and id of the Maintainable Object in which it resides. 730 730 ... ... @@ -734,10 +734,8 @@ 734 734 735 735 [[image:1747836776658-510.jpeg]] 736 736 737 -**Figure 3: Example MSD showing specification of three Metadata Attributes** 816 +**Figure 3: Example MSD showing specification of three Metadata Attributes **This example shows the following hierarchy of Metadata Attributes: 738 738 739 -This example shows the following hierarchy of Metadata Attributes: 740 - 741 741 Source – this is presentational and no metadata is expected to be reported at this level 742 742 743 743 * Source Type ... ... @@ -749,9 +749,12 @@ 749 749 750 750 [[image:1747836776677-246.jpeg]] 751 751 752 -**Figure 4: Example Metadata Set **This example shows: 829 + **Figure 4: Example Metadata Set **This example shows: 753 753 754 -1. The reference to the MSD, Metadata Report, and Metadata Target (MetadataTargetValue) 831 +1. The reference to the MSD, Metadata Report, and Metadata Target 832 + 833 +(MetadataTargetValue) 834 + 755 755 1. The reported metadata attributes (AttributeValueSet) 756 756 757 757 = 6 Maintenance Agencies = ... ... @@ -772,7 +772,7 @@ 772 772 773 773 [[image:1747836776680-229.jpeg]] 774 774 775 -**Figure 5: Example of Hierarchic Structure of Agencies** 855 + **Figure 5: Example of Hierarchic Structure of Agencies** 776 776 777 777 Each agency is identified by its full hierarchy excluding SDMX. 778 778 ... ... @@ -808,11 +808,10 @@ 808 808 809 809 The Information Model for this is shown below: 810 810 811 -[[image:1747855024745-946.png]] 812 812 813 -**Figure 8: Information Model Extract for Concept Role** 892 + **Figure 8: Information Model Extract for Concept Role** 814 814 815 -It is possible to specify zero or more concept roles for a Dimension, Measure Dimension and Data Attribute (but not the ReportingYearStartDay). The Time Dimension, Primary Measure, and the Attribute ReportingYearStartDay have explicitly defined roles and cannot be further specified with additional concept roles. 894 +It is possible to specify zero or more concept roles for a Dimension, Measure Dimension and Data Attribute (but not the ReportingYearStartDay). The Time Dimension, Primary Measure, and the Attribute ReportingYearStartDay have explicitly defined roles and cannot be further specified with additional concept roles. 816 816 817 817 == 7.3 Technical Mechanism == 818 818 ... ... @@ -830,14 +830,15 @@ 830 830 831 831 The Cross-Domain Concept Scheme maintained by SDMX contains concept role concepts (FREQ chosen as an example). 832 832 833 -[[image:17478 55054559-410.png]]912 +[[image:1747836776691-440.jpeg]] 834 834 835 835 Whether this is a role or not depends upon the application understanding that FREQ in the Cross-Domain Concept Scheme is a role of Frequency. 836 836 837 837 Using a Concept Scheme that is not the Cross-Domain Concept Scheme where it is required to assign a role using the Cross-Domain Concept Scheme. Again FREQ is chosen as the example. 838 838 839 -[[image:17478 55075263-887.png]]918 +[[image:1747836776693-898.jpeg]] 840 840 920 + 841 841 This explicitly states that this Dimension is playing a role identified by the FREQ concept in the Cross-Domain Concept Scheme. Again the application needs to understand what FREQ in the Cross-Domain Concept Scheme implies in terms of a role. 842 842 843 843 This is all that is required for interoperability within a community. The important point is that a community must recognise a specific Agency as having the authority to define concept roles and to maintain these “role” concepts in a concept scheme together with documentation on the meaning of the role and any relevant processing implications. This will then ensure there is interoperability between systems that understand the use of these concepts. ... ... @@ -885,7 +885,7 @@ 885 885 886 886 == 8.3 Rules for a Content Constraint == 887 887 888 -=== 8.3.1 Scope of a Content Constraint === 968 +=== 8.3.1 Scope of a Content Constraint === 889 889 890 890 A Content Constraint is used specify the content of a data or metadata source in terms of the component values or the keys. 891 891 ... ... @@ -906,7 +906,7 @@ 906 906 ** IdentifiableObject 907 907 * Metadata Attribute 908 908 909 -The “key” is therefore the combination of the Target Objects that are defined for the Metadata Target. 989 +The “key” is therefore the combination of the Target Objects that are defined for the Metadata Target. 910 910 911 911 For a Constraint based on a DSD the Content Constraint can reference one or more of: 912 912 ... ... @@ -924,60 +924,60 @@ 924 924 925 925 In view of the flexibility of constraints attachment, clear rules on their usage are required. These are elaborated below. 926 926 927 -=== 8.3.2 Multiple Content Constraints === 1007 +=== 8.3.2 Multiple Content Constraints === 928 928 929 929 There can be many Content Constraints for any Constrainable Artefact (e.g. DSD), subject to the following restrictions: 930 930 931 - ====8.3.2.1 Cube Region====1011 +**8.3.2.1 Cube Region** 932 932 933 933 1. The constraint can contain multiple Member Selections (e.g. Dimension) but: 934 -1. A specific Member Selection (e.g. Dimension FREQ) can only be contained in one Content Constraint for any one attached object (e.g. a specific DSD or specific Dataflow) 1014 +1. A specific Member Selection (e.g. Dimension FREQ) can only be contained in one Content Constraint for any one attached object (e.g. a specific DSD or specific Dataflow) 935 935 936 - ====8.3.2.2 Key Set====1016 +**8.3.2.2 Key Set** 937 937 938 -Key Sets will be processed in the order they appear in the Constraint and wildcards can be used (e.g. any key position not reference explicitly is deemed to be “all values”). As the Key Sets can be “included” or “excluded” it is recommended that Key Sets with wildcards are declared before KeySets with specific series keys. This will minimize the risk that keys are inadvertently included or excluded. 1018 +Key Sets will be processed in the order they appear in the Constraint and wildcards can be used (e.g. any key position not reference explicitly is deemed to be “all values”). As the Key Sets can be “included” or “excluded” it is recommended that Key Sets with wildcards are declared before KeySets with specific series keys. This will minimize the risk that keys are inadvertently included or excluded. 939 939 940 -=== 8.3.3 Inheritance of a Content Constraint === 1020 +=== 8.3.3 Inheritance of a Content Constraint === 941 941 942 - ====8.3.3.1 Attachment levels of a Content Constraint====1022 +**8.3.3.1 Attachment levels of a Content Constraint** 943 943 944 944 There are three levels of constraint attachment for which these inheritance rules apply: 945 945 946 -* DSD/MSD – top level 947 -** Dataflow/Metadataflow – second level 948 -*** Provision Agreement – third level 1026 + DSD/MSD – top level o Dataflow/Metadataflow – second level 949 949 1028 +§ Provision Agreement – third level 1029 + 950 950 Note that these rules do not apply to the Simple Datasoucre or Queryable Datasource: the Content Constraint(s) attached to these artefacts are resolved for this artefact only and do not take into account Constraints attached to other artefacts (e.g. Provision Agreement. Dataflow, DSD). 951 951 952 952 It is not necessary for a Content Constraint to be attached to higher level artifact. e.g. it is valid to have a Content Constraint for a Provision Agreement where there are no constraints attached the relevant dataflow or DSD. 953 953 954 - ====8.3.3.2 Cascade rules for processing Constraints====1034 +**8.3.3.2 Cascade rules for processing Constraints** 955 955 956 956 The processing of the constraints on either Dataflow/Metadataflow or Provision Agreement must take into account the constraints declared at higher levels. The rules for the lower level constraints (attached to Dataflow/ Metadataflow and Provision Agreement) are detailed below. 957 957 958 958 Note that there can be a situation where a constraint is specified at a lower level before a constraint is specified at a higher level. Therefore, it is possible that a higher level constraint makes a lower level constraint invalid. SDMX makes no rules on how such a conflict should be handled when processing the constraint for attachment. However, the cascade rules on evaluating constraints for usage are clear - the higher level constraint takes precedence in any conflicts that result in a less restrictive specification at the lower level. 959 959 960 - ====8.3.3.3 Cube Region====1040 +**8.3.3.3 Cube Region** 961 961 962 962 1. It is not necessary to have a constraint on the higher level artifact (e.g. DSD referenced by the Dataflow) but if there is such a constraint at the higher level(s) then: 963 - a. The lower level constraint cannot be less restrictive than the constraint specified for the same Member Selection (e.g. Dimension) at the next higher level which constraints that Member Selection (e.g. if the Dimension FREQ is constrained to A, Q in a DSD then the constraint at the Dataflow or Provision Agreement cannot be A, Q, M or even just M – it can only further constrain A,Q).964 - b. The constraint at the lower level for any one Member Selection further constrains the content for the same Member Selection at the higher level(s).1043 +11. The lower level constraint cannot be less restrictive than the constraint specified for the same Member Selection (e.g. Dimension) at the next higher level which constraints that Member Selection (e.g. if the Dimension FREQ is constrained to A, Q in a DSD then the constraint at the Dataflow or Provision Agreement cannot be A, Q, M or even just M – it can only further constrain A,Q). 1044 +11. The constraint at the lower level for any one Member Selection further constrains the content for the same Member Selection at the higher level(s). 965 965 1. Any Member Selection which is not referenced in a Content Constraint is deemed to be constrained according to the Content Constraint specified at the next higher level which constraints that Member Selection. 966 966 1. If there is a conflict when resolving the constraint in terms of a lower-level constraint being less restrictive than a higher-level constraint then the constraint at the higher-level is used. 967 967 968 968 Note that it is possible for a Content Constraint at a higher level to constrain, say, four Dimensions in a single constraint, and a Content Constraint at a lower level to constrain the same four in two, three, or four Content Constraints. 969 969 970 - ====8.3.3.4 Key Set====1050 +**8.3.3.4 Key Set** 971 971 972 972 1. It is not necessary to have a constraint on the higher level artefact (e.g. DSD referenced by the Dataflow) but if there is such a constraint at the higher level(s) then: 973 - a.The lower level constraint cannot be less restrictive than the constraint specified at the higher level.974 - b.The constraint at the lower level for any one Member Selection further constrains the keys specified at the higher level(s).1053 +11. The lower level constraint cannot be less restrictive than the constraint specified at the higher level. 1054 +11. The constraint at the lower level for any one Member Selection further constrains the keys specified at the higher level(s). 975 975 1. Any Member Selection which is not referenced in a Content Constraint is deemed to be constrained according to the Content Constraint specified at the next higher level which constraints that Member Selection. 976 976 1. If there is a conflict when resolving the keys in the constraint at two levels, in terms of a lower-level constraint being less restrictive than a higher-level constraint, then the offending keys specified at the lower level are not deemed part of the constraint. 977 977 978 978 Note that a Key in a Key Set can have wildcarded Components. For instance the constraint may simply constrain the Dimension FREQ to “A”, and all keys where the FREQ=A are therefore valid. 979 979 980 -The following logic explains how the inheritance mechanism works. Note that this is conceptual logic and actual systems may differ in the way this is implemented. 1060 +The following logic explains how the inheritance mechanism works. Note that this is conceptual logic and actual systems may differ in the way this is implemented. 981 981 982 982 1. Determine all possible keys that are valid at the higher level. 983 983 1. These keys are deemed to be inherited by the lower level constrained object, subject to the constraints specified at the lower level. ... ... @@ -985,11 +985,11 @@ 985 985 1. At the lower level inherit all keys that match with the higher level constraint. 986 986 1. If there are keys in the lower level constraint that are not inherited then the key is invalid (i.e. it is less restrictive). 987 987 988 - ===8.3.4 Constraints Examples===1068 +**8.3.4 Constraints Examples** 989 989 990 990 The following scenario is used. 991 991 992 - __DSD__1072 +=== DSD === 993 993 994 994 This contains the following Dimensions: 995 995 ... ... @@ -998,45 +998,114 @@ 998 998 * AGE – Age 999 999 * CAS – Current Activity Status 1000 1000 1001 -In the DSD common code lists are used and the requirement is to restrict these at various levels to specify the actual code that are valid for the object to which the Content Constraint is attached. 1081 +In the DSD common code lists are used and the requirement is to restrict these at various levels to specify the actual code that are valid for the object to which the Content Constraint is attached. 1002 1002 1003 -[[image:1747855493531-357.png]] 1004 1004 1005 -**Figure 10: Example Scenario for Constraints** 1084 +|((( 1085 + 1086 +))) 1006 1006 1088 +|((( 1089 + 1090 +))) 1091 + 1092 +|((( 1093 + 1094 +))) 1095 + 1096 +|((( 1097 +**Figure** 1098 +))) 1099 + 1100 +|((( 1101 +**10** 1102 +))) 1103 + 1104 +|((( 1105 +**:** 1106 +))) 1107 + 1108 +|((( 1109 +**~ Example Sce** 1110 +))) 1111 + 1112 +|((( 1113 +**nario for Constraints** 1114 +))) 1115 + 1116 +|((( 1117 +**~ ** 1118 +))) 1119 + 1120 + 1121 + 1007 1007 Constraints are declared as follows: 1008 1008 1009 -[[image:1747855462293-368.png]] 1010 1010 1011 -**Figure 11: Example Content Constraints** 1125 +|((( 1126 + 1127 +))) 1012 1012 1129 +|((( 1130 + 1131 +))) 1132 + 1133 +|((( 1134 + 1135 +))) 1136 + 1137 +|((( 1138 +**Figure** 1139 +))) 1140 + 1141 +|((( 1142 +**11** 1143 +))) 1144 + 1145 +|((( 1146 +**:** 1147 +))) 1148 + 1149 +|((( 1150 +**~ Example Content Constraints** 1151 +))) 1152 + 1153 +|((( 1154 +**~ ** 1155 +))) 1156 + 1157 + 1158 + 1013 1013 **Notes:** 1014 1014 1015 -1. AGE is constrained for the DSD and is further restricted for the Dataflow CENSUS_CUBE1. 1161 +1. AGE is constrained for the DSD and is further restricted for the Dataflow 1162 + 1163 +CENSUS_CUBE1. 1164 + 1016 1016 1. The same Constraint applies to both Provision Agreements. 1017 1017 1018 1018 The cascade rules elaborated above result as follows: 1019 1019 1020 - __DSD__1169 +DSD 1021 1021 1022 1022 ~1. Constrained by eliminating code 001 from the code list for the AGE Dimension. 1023 1023 1024 - __Dataflow CENSUS_CUBE1__1173 +=== Dataflow CENSUS_CUBE1 === 1025 1025 1026 1026 1. Constrained by restricting the code list for the AGE Dimension to codes 002 and 003(note that this is a more restrictive constraint than that declared for the DSD which specifies all codes except code 001). 1027 1027 1. Restricts the CAS codes to 003 and 004. 1028 1028 1029 - __Dataflow CENSUS_CUBE2__1178 +=== Dataflow CENSUS_CUBE2 === 1030 1030 1031 1031 1. Restricts the code list for the CAS Dimension to codes TOT and NAP. 1032 1032 1. Inherits the AGE constraint applied at the level of the DSD. 1033 1033 1034 - __Provision Agreements CENSUS_CUBE1_IT__1183 +=== Provision Agreements CENSUS_CUBE1_IT === 1035 1035 1036 1036 1. Restricts the codes for the GEO Dimension to IT and its children. 1037 -1. Inherits the constraints from Dataflow CENSUS_CUBE1 for the AGE and CAS Dimensions. 1186 +1. Inherits the constraints from Dataflow CENSUS_CUBE1 for the AGE and CAS Dimensions. 1038 1038 1039 - __Provision Agreements CENSUS_CUBE2_IT__1188 +=== Provision Agreements CENSUS_CUBE2_IT === 1040 1040 1041 1041 1. Restricts the codes for the GEO Dimension to IT and its children. 1042 1042 1. Inherits the constraints from Dataflow CENSUS_CUBE2 for the CAS Dimension. ... ... @@ -1044,17 +1044,17 @@ 1044 1044 1045 1045 The constraints are defined as follows: 1046 1046 1047 - __DSD Constraint__1196 +=== DSD Constraint === 1048 1048 1049 1049 [[image:1747836776698-720.jpeg]] 1050 1050 1051 - __Dataflow Constraints__1200 +=== Dataflow Constraints === 1052 1052 1053 1053 [[image:1747836776701-360.jpeg]] 1054 1054 1055 -[[image:1747836776707-834.jpeg]] 1204 +=== [[image:1747836776707-834.jpeg]] === 1056 1056 1057 - __Provision Agreement Constraint__1206 +=== Provision Agreement Constraint === 1058 1058 1059 1059 [[image:1747836776710-262.jpeg]] 1060 1060 ... ... @@ -1066,7 +1066,7 @@ 1066 1066 1067 1067 == 9.2 Groups and Dimension Groups == 1068 1068 1069 -=== 9.2.1 Issue === 1218 +=== 9.2.1 Issue === 1070 1070 1071 1071 Version 2.1 introduces a more granular mechanism for specifying the relationship between a Data Attribute and the Dimensions to which the attribute applies. The technical construct for this is the Dimension Group. This Dimension Group has no direct equivalent in versions 2.0 and 1.0 and so the application transforming data from a version 2.1 data set to a version 2.0 or version 1.0 data set must decide to which construct the attribute value, whose Attribute is declared in a Dimension Group, should be attached. The closest construct is the “Series” attachment level and in many cases this is the correct construct to use. 1072 1072 ... ... @@ -1079,7 +1079,7 @@ 1079 1079 1080 1080 If the conditions defined in 9.2.1are true then on conversion to a version 2.0 or 1.0 DSD (Key Family) the Component/Attribute.attachmentLevel must be set to “Group” and the Component/Attribute/AttachmentGroup” is used to identify the Group. Note that under rule(1) in 1.2.1 this group will have been defined in the V 2.1 DSD and so will be present in the V 2.0 transformation. 1081 1081 1082 -=== 9.2.3 Data === 1231 +=== 9.2.3 Data === 1083 1083 1084 1084 If the conditions defined in 9.2.1are true then, on conversion from a 2.1 data set to a 2.0 or 1.0 dataset the attribute value will be placed in the relevant <Group>. If these conditions are not true then the attribute value will be placed in the <Series>. 1085 1085 ... ... @@ -1091,17 +1091,17 @@ 1091 1091 1092 1092 == 10.1 Introduction == 1093 1093 1094 -The Validation and Transformation Language (VTL) supports the definition of Transformations, which are algorithms to calculate new data starting from already existing ones[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[4~]^^>>path:#_ftn4]](%%). The purpose of the VTL in the SDMX context is to enable the:1243 +The Validation and Transformation Language (VTL) supports the definition of Transformations, which are algorithms to calculate new data starting from already existing ones[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[4~]^^>>path:#_ftn4]](%%). The purpose of the VTL in the SDMX context is to enable the: 1095 1095 1096 -* definition of validation and transformation algorithms, in order to specify how to calculate new data from existing ones; 1245 +* definition of validation and transformation algorithms, in order to specify how to calculate new data from existing ones; 1097 1097 * exchange of the definition of VTL algorithms, also together the definition of the data structures of the involved data (for example, exchange the data structures of a reporting framework together with the validation rules to be applied, exchange the input and output data structures of a calculation task together with the VTL Transformations describing the calculation algorithms); 1098 1098 * compilation and execution of VTL algorithms, either interpreting the VTL transformations or translating them in whatever other computer language is deemed as appropriate. 1099 1099 1100 -It is important to note that the VTL has its own information model (IM), derived from the Generic Statistical Information Model (GSIM) and described in the VTL User Guide. The VTL IM is designed to be compatible with more standards, like SDMX, DDI (Data Documentation Initiative) and GSIM, and includes the model artefacts that can be manipulated (inputs and/or outputs of transformations, e.g. “Data Set”, “Data Structure”) and the model artefacts that allow the definition of the transformation algorithms (e.g. “Transformation”, “Transformation Scheme”). 1249 +It is important to note that the VTL has its own information model (IM), derived from the Generic Statistical Information Model (GSIM) and described in the VTL User Guide. The VTL IM is designed to be compatible with more standards, like SDMX, DDI (Data Documentation Initiative) and GSIM, and includes the model artefacts that can be manipulated (inputs and/or outputs of transformations, e.g. “Data Set”, “Data Structure”) and the model artefacts that allow the definition of the transformation algorithms (e.g. “Transformation”, “Transformation Scheme”). 1101 1101 1102 -The VTL language can be applied to SDMX artefacts by mapping the SDMX IM model artefacts to the model artefacts that VTL can manipulate. Thus, the SDMX artefacts can be used in VTL as inputs and/or outputs of transformations. It is important to be aware that the artefacts do not always have the same names in the SDMX and VTL IMs, nor do they always have the same meaning. The more evident example is given by the SDMX Dataset and the VTL “Data Set”, which do not correspond one another: as a matter of fact, the VTL “Data Set” maps to the SDMX “Dataflow”, while the SDMX “Dataset” has no explicit mapping to VTL (such an abstraction is not needed in the definition of VTL transformations). A SDMX “Dataset”, however, is an instance of a SDMX “Dataflow” and can be the artefact on which the VTL transformations are executed (i.e., the transformations are defined on Dataflows and are applied to Dataflow instances that can be Datasets). 1251 +The VTL language can be applied to SDMX artefacts by mapping the SDMX IM model artefacts to the model artefacts that VTL can manipulate. Thus, the SDMX artefacts can be used in VTL as inputs and/or outputs of transformations. It is important to be aware that the artefacts do not always have the same names in the SDMX and VTL IMs, nor do they always have the same meaning. The more evident example is given by the SDMX Dataset and the VTL “Data Set”, which do not correspond one another: as a matter of fact, the VTL “Data Set” maps to the SDMX “Dataflow”, while the SDMX “Dataset” has no explicit mapping to VTL (such an abstraction is not needed in the definition of VTL transformations). A SDMX “Dataset”, however, is an instance of a SDMX “Dataflow” and can be the artefact on which the VTL transformations are executed (i.e., the transformations are defined on Dataflows and are applied to Dataflow instances that can be Datasets). 1103 1103 1104 -The VTL programs (Transformation Schemes) are represented in SDMX through the TransformationScheme maintainable class which is composed of Transformation (nameable artefact). Each Transformation assigns the outcome of the evaluation of a VTL expression to a result. 1253 +The VTL programs (Transformation Schemes) are represented in SDMX through the TransformationScheme maintainable class which is composed of Transformation (nameable artefact). Each Transformation assigns the outcome of the evaluation of a VTL expression to a result. 1105 1105 1106 1106 This section does not explain the VTL language or any of the content published in the VTL guides. Rather, this is a description of how the VTL can be used in the SDMX context and applied to SDMX artefacts. 1107 1107 ... ... @@ -1109,14 +1109,16 @@ 1109 1109 1110 1110 === 10.2.1 Introduction === 1111 1111 1112 -The VTL can manipulate SDMX artefacts (or objects) by referencing them through pre-defined conventional names (aliases). 1261 +The VTL can manipulate SDMX artefacts (or objects) by referencing them through pre-defined conventional names (aliases). 1113 1113 1114 1114 The alias of a SDMX artefact can be its URN (Universal Resource Name), an abbreviation of its URN or another user-defined name. 1115 1115 1116 -In any case, the aliases used in the VTL transformations have to be mapped to the SDMX artefacts through the VtlMappingScheme and VtlMapping classes (see the section of the SDMX IM relevant to the VTL). A VtlMapping allows specifying the aliases to be used in the VTL transformations, rulesets[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[5~]^^>>path:#_ftn5]](%%) or user defined operators[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[6~]^^>>path:#_ftn6]](%%) to reference SDMX artefacts. A VtlMappingScheme is a container for zero or more VtlMapping.1265 +In any case, the aliases used in the VTL transformations have to be mapped to the 1117 1117 1118 - ThecorrespondencebetweenanaliasandaSDMXartefactmustbeone-to-one,meaning that a genericaliasidentifies oneand justoneSDMXartefactwhile aSDMX artefactisidentifiedby oneandjust onealias.In otherwords,withina VtlMappingSchemeanartefact canhave just onealiasanddifferentartefactscannothavethesamealias.1267 +SDMX artefacts through the VtlMappingScheme and VtlMapping classes (see the section of the SDMX IM relevant to the VTL). A VtlMapping allows specifying the aliases to be used in the VTL transformations, rulesets[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[5~]^^>>path:#_ftn5]](%%) or user defined operators[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[6~]^^>>path:#_ftn6]](%%) to reference SDMX artefacts. A VtlMappingScheme is a container for zero or more VtlMapping. 1119 1119 1269 +The correspondence between an alias and a SDMX artefact must be one-to-one, meaning that a generic alias identifies one and just one SDMX artefact while a SDMX artefact is identified by one and just one alias. In other words, within a VtlMappingScheme an artefact can have just one alias and different artefacts cannot have the same alias. 1270 + 1120 1120 The references through the URN and the abbreviated URN are described in the following paragraphs. 1121 1121 1122 1122 === 10.2.2 References through the URN === ... ... @@ -1123,15 +1123,15 @@ 1123 1123 1124 1124 This approach has the advantage that in the VTL code the URN of the referenced artefacts is directly intelligible by a human reader but has the drawback that the references are verbose. 1125 1125 1126 -The SDMX URN[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[7~]^^>>path:#_ftn7]](%%) is the concatenation of the following parts, separated by special symbols like dot, equal, asterisk, comma, and parenthesis:^^ ^^1277 +The SDMX URN[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[7~]^^>>path:#_ftn7]](%%) is the concatenation of the following parts, separated by special symbols like dot, equal, asterisk, comma, and parenthesis:^^ ^^ 1127 1127 1128 -* SDMXprefix 1129 -* SDMX-IM-package-name 1130 -* class-name 1131 -* agency-id 1279 +* SDMXprefix 1280 +* SDMX-IM-package-name 1281 +* class-name 1282 +* agency-id 1132 1132 * maintainedobject-id 1133 1133 * maintainedobject-version 1134 -* container-object-id [[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[8~]^^>>path:#_ftn8]]1285 +* container-object-id [[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[8~]^^>>path:#_ftn8]] 1135 1135 * object-id 1136 1136 1137 1137 The generic structure of the URN is the following: ... ... @@ -1142,7 +1142,7 @@ 1142 1142 1143 1143 The **SDMX prefix** is “urn:sdmx:org”, always the same for all SDMX artefacts. 1144 1144 1145 -The **SDMX-IM-package-name **is the concatenation of the string** **“sdmx.infomodel.” with the package-name which the artefact belongs to. For example, for referencing a dataflow the SDMX-IM-package-name is “sdmx.infomodel.datastructure”, because the class ,,Dataflow,, belongs to the package “datastructure”. 1296 +The **SDMX-IM-package-name **is the concatenation of the string** **“sdmx.infomodel.” with the package-name which the artefact belongs to. For example, for referencing a dataflow the SDMX-IM-package-name is “sdmx.infomodel.datastructure”, because the class ,,Dataflow,, belongs to the package “datastructure”. 1146 1146 1147 1147 The **class-name** is the name of the SDMX object class which the SDMX object belongs to (e.g., for referencing a dataflow the class-name is “Dataflow”). The VTL can reference SDMX artefacts that belong to the classes ,,Dataflow, Dimension,,, 1148 1148 ... ... @@ -1150,13 +1150,13 @@ 1150 1150 1151 1151 The **agency-id** is the acronym of the agency that owns the definition of the artefact, for example for the Eurostat artefacts the agency-id is “ESTAT”). The agency-id can be composite (for example AgencyA.Dept1.Unit2). 1152 1152 1153 -The **maintainedobject-id** is the name of the maintained object which the artefact belongs to, and in case the artefact itself is maintainable[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[9~]^^>>path:#_ftn9]](%%), coincides with the name of the artefact. Therefore the maintainedobject-id depends on the class of the artefact:1304 +The **maintainedobject-id** is the name of the maintained object which the artefact belongs to, and in case the artefact itself is maintainable[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[9~]^^>>path:#_ftn9]](%%), coincides with the name of the artefact. Therefore the maintainedobject-id depends on the class of the artefact: 1154 1154 1155 -* if the artefact is a Dataflow, which is a maintainable class, the maintainedobject-id is the Dataflow name (dataflow-id); 1156 -* if the artefact is a Dimension, MeasureDimension, TimeDimension, PrimaryMeasure or DataAttribute, which are not maintainable and belong to the DataStructure maintainable class, the maintainedobject-id is the name of the DataStructure (dataStructure-id) which the artefact belongs to; 1157 -* if the artefact is a Concept, which is not maintainable and belongs to the ConceptScheme maintainable class, ,, ,,the maintainedobject-id is the name of the ConceptScheme (conceptScheme-id) which the artefact belongs to; 1158 -* if the artefact is a ConceptScheme, which is a maintainable class, ,, ,,the maintainedobject-id is the name of the ConceptScheme (conceptScheme-id); 1159 -* if the artefact is a Codelist, which is a maintainable class, the maintainedobject-id is the Codelist name (codelist-id).1306 +* if the artefact is a ,,Dataflow,,, which is a maintainable class, the maintainedobject-id is the Dataflow name (dataflow-id); 1307 +* if the artefact is a Dimension, MeasureDimension, TimeDimension, PrimaryMeasure or DataAttribute, which are not maintainable and belong to the ,,DataStructure,, maintainable class, the maintainedobject-id is the name of the DataStructure (dataStructure-id) which the artefact belongs to; 1308 +* if the artefact is a ,,Concept,,, which is not maintainable and belongs to the ConceptScheme maintainable class, ,, ,,the maintainedobject-id is the name of the ConceptScheme (conceptScheme-id) which the artefact belongs to; 1309 +* if the artefact is a ,,ConceptScheme,,, which is a maintainable class, ,, ,,the maintainedobject-id is the name of the ConceptScheme (conceptScheme-id); 1310 +* if the artefact is a ,,Codelist, ,,which is a maintainable class, the maintainedobject-id is the Codelist name (codelist-id). 1160 1160 1161 1161 The **maintainedobject-version** is the version of the maintained object which the artefact belongs to (for example, possible versions are 1.0, 2.1, 3.1.2). 1162 1162 ... ... @@ -1164,13 +1164,18 @@ 1164 1164 1165 1165 The **object-id** is the name of the non-maintainable artefact (when the artefact is maintainable its name is already specified as the maintainedobject-id, see above), in particular it has to be specified: 1166 1166 1167 -* if the artefact is a Dimension, MeasureDimension, TimeDimension, PrimaryMeasure or DataAttribute (the object-id is the name of one of the artefacts above, which are data structure components) 1168 -* if the artefact is a Concept (the object-id is the name of the Concept) 1318 +* if the artefact is a Dimension, MeasureDimension, TimeDimension, PrimaryMeasure or DataAttribute (the object-id is the name of one of 1169 1169 1170 - For example, by usingtheURN, the VTL transformation that sums two SDMX dataflows DF1and DF2 and assignsthe resulttoathird persistent dataflow DFR,assuming that DF1, DF2 and DFR are the maintainedobject-id of thethreedataflows,that their version is 1.0 andtheirAgency is AG, would be writtenas[[(%class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[10~]^^>>path:#_ftn10]](%%):1320 +the artefacts above, which are data structure components) 1171 1171 1322 +* if the artefact is a ,,Concept ,,(the object-id is the name of the ,,Concept,,) 1323 + 1324 +For example, by using the URN, the VTL transformation that sums two SDMX dataflows DF1 and DF2 and assigns the result to a third persistent dataflow DFR, assuming that DF1, DF2 and DFR are the maintainedobject-id of the three dataflows, that their version is 1.0 and their Agency is AG, would be written as[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[10~]^^>>path:#_ftn10]](%%): 1325 + 1172 1172 ‘urn:sdmx:org.sdmx.infomodel.datastructure.Dataflow=AG:DFR(1.0)’ <- 1173 -‘urn:sdmx:org.sdmx.infomodel.datastructure.Dataflow=AG:DF1(1.0)’ + 1327 + 1328 +‘urn:sdmx:org.sdmx.infomodel.datastructure.Dataflow=AG:DF1(1.0)’ + 1329 + 1174 1174 ‘urn:sdmx:org.sdmx.infomodel.datastructure.Dataflow=AG:DF2(1.0)’ 1175 1175 1176 1176 === 10.2.3 Abbreviation of the URN === ... ... @@ -1180,50 +1180,52 @@ 1180 1180 The URN can be abbreviated by omitting the parts that are not essential for the identification of the artefact or that can be deduced from other available information, including the context in which the invocation is made. The possible abbreviations are described below. 1181 1181 1182 1182 * The **SDMXPrefix** can be omitted for all the SDMX objects, because it is a prefixed string (urn:sdmx:org), always the same for SDMX objects. 1183 -* The **SDMX-IM-package-name **can be omitted as well because it can be deduced from the class-name that follows it (the table of the SDMX-IM packages and classes that allows this deduction is in the SDMX 2.1 Standards - Section 5 - Registry Specifications, paragraph 6.2.3). In particular, considering the object classes of the artefacts that VTL can reference, the package is: 1184 -** “datastructure” for the classes Dataflow, Dimension, MeasureDimension, TimeDimension, PrimaryMeasure, DataAttribute, 1185 -** “conceptscheme” for the classes Concept and ConceptScheme 1186 -** “codelist” for the class Codelist. 1187 -* The **class-name** can be omitted as it can be deduced from the VTL invocation. In particular, starting from the VTL class of the invoked artefact (e.g. dataset, component, identifier, measure, attribute, variable, valuedomain), which is known given the syntax of the invoking VTL operator[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[11~]^^>>path:#_ftn11]](%%), the SDMX class can be deduced from the mapping rules between VTL and SDMX (see the section “Mapping between VTL and SDMX” hereinafter)[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[12~]^^>>path:#_ftn12]](%%). 1188 -* If the **agency-id** is not specified, it is assumed by default equal to the agency-id of the TransformationScheme, UserDefinedOperatorScheme or RulesetScheme from which the artefact is invoked. For example, the agency-id can be omitted if it is the same as the invoking TransformationScheme and cannot be omitted if the artefact comes from another agency.[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[13~]^^>>path:#_ftn13]](%%) Take also into account that, according to the VTL consistency rules, the agency of the result of a Transformation must be the same as its TransformationScheme, therefore the agency-id can be omitted for all the results (left part of Transformation statements). 1189 -* As for the **maintainedobject-id**, this is essential in some cases while in other cases it can be omitted: o if the referenced artefact is a Dataflow, which is a maintainable class, the maintainedobject-id is the dataflow-id and obviously cannot be omitted; 1190 -** if the referenced artefact is a Dimension, MeasureDimension, TimeDimension, PrimaryMeasure, DataAttribute, which are not maintainable and belong to the DataStructure maintainable class, the maintainedobject-id is the dataStructure-id and can be omitted, given that these components are always invoked within the invocation of a Dataflow, whose dataStructure-id can be deduced from the SDMX structural definitions; 1191 -** if the referenced artefact is a Concept, which is not maintainable and belong to the ConceptScheme maintainable class,,, ,,the maintained object is the conceptScheme-id and cannot be omitted; 1192 -** if the referenced artefact is a ConceptScheme, which is a,, ,,maintainable class,,, ,,the maintained object is the conceptScheme-id and obviously cannot be omitted; 1193 -** if the referenced artefact is a Codelist, which is a maintainable class, the maintainedobject-id is the codelist-id and obviously cannot be omitted. 1339 +* The **SDMX-IM-package-name **can be omitted as well because it can be deduced from the class-name that follows it (the table of the SDMX-IM packages and classes that allows this deduction is in the SDMX 2.1 Standards - Section 5 - Registry Specifications, paragraph 6.2.3). In particular, considering the object classes of the artefacts that VTL can reference, the package is: 1340 +** “datastructure” for the classes Dataflow, Dimension, MeasureDimension, TimeDimension, PrimaryMeasure, DataAttribute, 1341 +** “conceptscheme” for the classes Concept and ConceptScheme o “codelist” for the class Codelist. 1342 +* The **class-name** can be omitted as it can be deduced from the VTL invocation. In particular, starting from the VTL class of the invoked artefact (e.g. dataset, component, identifier, measure, attribute, variable, valuedomain), which is known given the syntax of the invoking VTL operator[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[11~]^^>>path:#_ftn11]](%%), the SDMX class can be deduced from the mapping rules between VTL and SDMX (see the section “Mapping between VTL and SDMX” hereinafter)[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[12~]^^>>path:#_ftn12]](%%). 1343 +* If the **agency-id** is not specified, it is assumed by default equal to the agency-id of the TransformationScheme, UserDefinedOperatorScheme or RulesetScheme from which the artefact is invoked. For example, the agency-id can be omitted if it is the same as the invoking T,,ransformationScheme,, and cannot be omitted if the artefact comes from another agency.[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[13~]^^>>path:#_ftn13]](%%) Take also into account that, according to the VTL consistency rules, the agency of the result of a ,,Transformation,, must be the same as its ,,TransformationScheme,,, therefore the agency-id can be omitted for all the results (left part of ,,Transformation,, statements). 1344 +* As for the **maintainedobject-id**, this is essential in some cases while in other cases it can be omitted: o if the referenced artefact is a ,,Dataflow,,, which is a maintainable class, the maintainedobject-id is the dataflow-id and obviously cannot be omitted; 1345 +** if the referenced artefact is a Dimension, MeasureDimension, TimeDimension, PrimaryMeasure, DataAttribute, which are not maintainable and belong to the ,,DataStructure,, maintainable class, the maintainedobject-id is the dataStructure-id and can be omitted, given that these components are always invoked within the invocation of a ,,Dataflow,,, whose dataStructure-id can be deduced from the 1346 + 1347 +SDMX structural definitions; o if the referenced artefact is a ,,Concept, ,,which is not maintainable and belong to the ,,ConceptScheme ,,maintainable class,,, ,,the maintained object is the conceptScheme-id and cannot be omitted; 1348 + 1349 +* 1350 +** if the referenced artefact is a ,,ConceptScheme, ,,which is a,, ,,maintainable class,,, ,,the maintained object is the ,,conceptScheme-id,, and obviously cannot be omitted; 1351 +** if the referenced artefact is a ,,Codelist, ,,which is a maintainable class, the maintainedobject-id is the ,,codelist-id,, and obviously cannot be omitted. 1194 1194 * When the maintainedobject-id is omitted, the **maintainedobject-version** is omitted too. When the maintainedobject-id is not omitted and the maintainedobject-version is omitted, the version 1.0 is assumed by default.,, ,, 1195 1195 * As said, the **container-object-id** does not apply to the classes that can be referenced in VTL transformations, therefore is not present in their URN 1196 -* The **object-id** does not exist for the artefacts belonging to the Dataflow, ConceptScheme and Codelist classes, while it exists and cannot be omitted for the artefacts belonging to the classes Dimension, MeasureDimension, TimeDimension, PrimaryMeasure, DataAttribute and Concept, as for them the object-id is the main identifier of the artefact1354 +* The **object-id** does not exist for the artefacts belonging to the ,,Dataflow, ConceptScheme,, and ,,Codelist,, classes, while it exists and cannot be omitted for the artefacts belonging to the classes Dimension, MeasureDimension, TimeDimension, PrimaryMeasure, DataAttribute and Concept, as for 1197 1197 1356 +them the object-id is the main identifier of the artefact 1357 + 1198 1198 The simplified object identifier is obtained by omitting all the first part of the URN, including the special characters, till the first part not omitted. 1199 1199 1200 1200 For example, the full formulation that uses the complete URN shown at the end of the previous paragraph: 1201 1201 1202 -‘urn:sdmx:org.sdmx.infomodel.datastructure.Dataflow=AG:DFR(1.0)’ := 1203 - ‘urn:sdmx:org.sdmx.infomodel.datastructure.Dataflow=AG:DF1(1.0)’ +1362 +‘urn:sdmx:org.sdmx.infomodel.datastructure.Dataflow=AG:DFR(1.0)’ := ‘urn:sdmx:org.sdmx.infomodel.datastructure.Dataflow=AG:DF1(1.0)’ + 1363 + 1204 1204 ‘urn:sdmx:org.sdmx.infomodel.datastructure.Dataflow=AG:DF2(1.0)’ 1205 1205 1206 -by omitting all the non-essential parts would become simply: 1366 +by omitting all the non-essential parts would become simply: 1207 1207 1208 -DFR := DF1 + DF2 1368 +DFR := DF1 + DF2 1209 1209 1210 -The references to the Codelists can be simplified similarly. For example, given the non-abbreviated reference to the Codelist AG:CL_FREQ(1.0), which is[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[14~]^^>>path:#_ftn14]](%%):1370 +The references to the ,,Codelists,, can be simplified similarly. For example, given the non-abbreviated reference to the ,,Codelist,, AG:CL_FREQ(1.0), which is[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[14~]^^>>path:#_ftn14]](%%): 1211 1211 1212 1212 ‘urn:sdmx:org.sdmx.infomodel.codelist.Codelist=AG:CL_FREQ(1.0)’ 1213 1213 1214 -if the Codelist is referenced from a ruleset scheme belonging to the agency AG, omitting all the optional parts, the abbreviated reference would become simply[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[15~]^^>>path:#_ftn15]](%%):1374 +if the ,,Codelist,, is referenced from a ruleset scheme belonging to the agency AG, omitting all the optional parts, the abbreviated reference would become simply[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[15~]^^>>path:#_ftn15]](%%): 1215 1215 1216 1216 CL_FREQ 1217 1217 1218 -As for the references to the components, it can be enough to specify the componentId, given that the dataStructure-Id can be omitted. An example of non-abbreviated reference, if the data structure is DST1 and the component is SECTOR, is the following: 1378 +As for the references to the components, it can be enough to specify the componentId, given that the dataStructure-Id can be omitted. An example of non-abbreviated reference, if the data structure is DST1 and the component is SECTOR, is the following: 1219 1219 1220 -‘urn:sdmx:org.sdmx.infomodel.datastructure.DataStructure=AG:DST1(1.0).SECTOR’ 1380 +‘urn:sdmx:org.sdmx.infomodel.datastructure.DataStructure=AG:DST1(1.0).SECTOR’ The corresponding fully abbreviated reference, if made from a transformation scheme belonging to AG, would become simply: 1221 1221 1222 -The corresponding fully abbreviated reference, if made from a transformation scheme belonging to AG, would become simply: 1223 - 1224 1224 SECTOR 1225 1225 1226 -For example, the transformation for renaming the component SECTOR of the dataflow DF1 into SEC can be written as[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[16~]^^>>path:#_ftn16]](%%):1384 +For example, the transformation for renaming the component SECTOR of the dataflow DF1 into SEC can be written as[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[16~]^^>>path:#_ftn16]](%%): 1227 1227 1228 1228 ‘DFR(1.0)’ := ‘DF1(1.0)’ [rename SECTOR to SEC] 1229 1229 ... ... @@ -1233,7 +1233,7 @@ 1233 1233 1234 1234 ‘urn:sdmx:org.sdmx.infomodel.conceptscheme.Concept=AG:CS1(1.0).SECTOR’ 1235 1235 1236 -The corresponding fully abbreviated reference, if made from a RulesetScheme belonging to AG, would become simply: 1394 +The corresponding fully abbreviated reference, if made from a RulesetScheme belonging to AG, would become simply: 1237 1237 1238 1238 CS1(1.0).SECTOR 1239 1239 ... ... @@ -1255,13 +1255,13 @@ 1255 1255 1256 1256 VTL operators, like the ones for validation and hierarchical roll-up. A “rule” consists in a relationship between Values belonging to some Value Domains or taken by some Variables, for example: (i) when the Country is USA then the Currency is USD; (ii) the Benelux is composed by Belgium, Luxembourg, Netherlands. 1257 1257 1258 -The VTL Rulesets have a signature, in which the Value Domains or the Variables on which the Ruleset is defined are declared, and a body, which contains the rules. 1416 +The VTL Rulesets have a signature, in which the Value Domains or the Variables on which the Ruleset is defined are declared, and a body, which contains the rules. 1259 1259 1260 -In the signature, given the mapping between VTL and SDMX better described in the following paragraphs, a reference to a VTL Value Domain becomes a reference to a SDMX Codelist or to a SDMX ConceptScheme (for SDMX measure dimensions), while a reference to a VTL Represented Variable becomes a reference to a SDMX Concept, assuming for it a definite representation[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[17~]^^>>path:#_ftn17]](%%).1418 +In the signature, given the mapping between VTL and SDMX better described in the following paragraphs, a reference to a VTL Value Domain becomes a reference to a SDMX Codelist or to a SDMX ConceptScheme (for SDMX measure dimensions), while a reference to a VTL Represented Variable becomes a reference to a SDMX Concept, assuming for it a definite representation[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[17~]^^>>path:#_ftn17]](%%). 1261 1261 1262 -In general, for referencing SDMX Codelists and Concepts, the conventions described in the previous paragraphs apply. In the Ruleset syntax, the elements that reference SDMX artefacts are called “valueDomain” and “variable” for the Datapoint Rulesets and “ruleValueDomain”, “ruleVariable”, “condValueDomain” “condVariable” for the Hierarchical Rulesets). The syntax of the Ruleset signature allows also to define aliases of the elements above, these aliases are valid only within the specific ruleset definition statement and cannot be mapped to SDMX.[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[18~]^^>>path:#_ftn18]](%%)1420 +In general, for referencing SDMX Codelists and Concepts, the conventions described in the previous paragraphs apply. In the Ruleset syntax, the elements that reference SDMX artefacts are called “valueDomain” and “variable” for the Datapoint Rulesets and “ruleValueDomain”, “ruleVariable”, “condValueDomain” “condVariable” for the Hierarchical Rulesets). The syntax of the Ruleset signature allows also to define aliases of the elements above, these aliases are valid only within the specific ruleset definition statement and cannot be mapped to SDMX.[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[18~]^^>>path:#_ftn18]](%%) 1263 1263 1264 -In the body of the Rulesets, the Codes and in general all the Values can be written without any other specification, because the artefact which the Values are referred (Codelist, ConceptScheme, Concept) to can be deduced from the Ruleset signature. 1422 +In the body of the Rulesets, the Codes and in general all the Values can be written without any other specification, because the artefact which the Values are referred (Codelist, ConceptScheme, Concept) to can be deduced from the Ruleset signature. 1265 1265 1266 1266 == 10.3 Mapping between SDMX and VTL artefacts == 1267 1267 ... ... @@ -1269,59 +1269,62 @@ 1269 1269 1270 1270 The mapping methods between the VTL and SDMX object classes allow transforming a SDMX definition in a VTL one and vice-versa for the artefacts to be manipulated. 1271 1271 1272 -It should be remembered that VTL programs (i.e. Transformation Schemes) are represented in SDMX through the TransformationScheme maintainable class which is composed of Transformations (nameable artefacts). Each Transformation assigns the outcome of the evaluation of a VTL expression to a result: the input operands of the expression and the result can be SDMX artefacts. 1430 +It should be remembered that VTL programs (i.e. Transformation Schemes) are represented in SDMX through the TransformationScheme maintainable class which is composed of Transformations (nameable artefacts). Each Transformation assigns the outcome of the evaluation of a VTL expression to a result: the input operands of the expression and the result can be SDMX artefacts. 1273 1273 1274 -Every time a SDMX object is referenced in a VTL Transformation as an input operand, there is the need to generate a VTL definition of the object, so that the VTL operations can take place. This can be made starting from the SDMX definition and applying a SDMX-VTL mapping method in the direction from SDMX to VTL. The possible mapping methods from SDMX to VTL are described in the following paragraphs and are conceived to allow the automatic deduction of the VTL definition of the object from the knowledge of the SDMX definition. 1432 +Every time a SDMX object is referenced in a VTL Transformation as an input operand, there is the need to generate a VTL definition of the object, so that the VTL operations can take place. This can be made starting from the SDMX definition and applying a SDMX-VTL mapping method in the direction from SDMX to VTL. The possible mapping methods from SDMX to VTL are described in the following paragraphs and are conceived to allow the automatic deduction of the VTL definition of the object from the knowledge of the SDMX definition. 1275 1275 1276 -In the opposite direction, every time an object calculated by means of VTL must be treated as a SDMX object (for example for exchanging it through SDMX), there is the need of a SDMX definition of the object, so that the SDMX operations can take place. The SDMX definition is needed for the VTL objects for which a SDMX use is envisaged[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[19~]^^>>path:#_ftn19]](%%).1434 +In the opposite direction, every time an object calculated by means of VTL must be treated as a SDMX object (for example for exchanging it through SDMX), there is the need of a SDMX definition of the object, so that the SDMX operations can take place. The SDMX definition is needed for the VTL objects for which a SDMX use is envisaged[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[19~]^^>>path:#_ftn19]](%%). 1277 1277 1278 -The mapping methods from VTL to SDMX are described in the following paragraphs as well, however they do not allow the complete SDMX definition to be automatically deduced from the VTL definition, more than all because the former typically contains additional information in respect to the latter. For example, the definition of a SDMX DSD includes also some mandatory information not available in VTL (like the concept scheme to which the SDMX components refer, the assignmentStatus and attributeRelationship for the DataAttributes and so on). Therefore the mapping methods from VTL to SDMX provide only a general guidance for generating SDMX definitions properly starting from the information available in VTL, independently of how the SDMX definition it is actually generated (manually, automatically or part and part). 1436 +The mapping methods from VTL to SDMX are described in the following paragraphs as well, however they do not allow the complete SDMX definition to be automatically deduced from the VTL definition, more than all because the former typically contains additional information in respect to the latter. For example, the definition of a SDMX DSD includes also some mandatory information not available in VTL (like the concept scheme to which the SDMX components refer, the assignmentStatus and attributeRelationship for the DataAttributes and so on). Therefore the mapping methods from VTL to SDMX provide only a general guidance for generating SDMX definitions properly starting from the information available in VTL, independently of how the SDMX definition it is actually generated (manually, automatically or part and part). 1279 1279 1280 1280 === 10.3.2 General mapping of VTL and SDMX data structures === 1281 1281 1282 -This section makes reference to the VTL “Model for data and their structure”[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[20~]^^>>path:#_ftn20]](%%) and the correspondent SDMX “Data Structure Definition”[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallinkwikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[21~]^^>>path:#_ftn21]](%%).1440 +This section makes reference to the VTL “Model for data and their structure”[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[20~]^^>>path:#_ftn20]](%%) and the correspondent SDMX “Data Structure Definition”[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[21~]^^>>path:#_ftn21]](%%). 1283 1283 1284 -The main type of artefact that the VTL can manipulate is the VTL Data Set, which in general is mapped to the SDMX Dataflow. This means that a VTL Transformation, in the SDMX context, expresses the algorithm for calculating a derived Dataflow starting from some already existing Dataflows (either collected or derived).[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[22~]^^>>path:#_ftn22]](%%)1442 +The main type of artefact that the VTL can manipulate is the VTL Data Set, which in general is mapped to the SDMX Dataflow. This means that a VTL Transformation, in the SDMX context, expresses the algorithm for calculating a derived Dataflow starting from some already existing Dataflows (either collected or derived).[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[22~]^^>>path:#_ftn22]](%%) 1285 1285 1286 -While the VTL Transformations are defined in term of Dataflow definitions, they are assumed to be executed on instances of such Dataflows, provided at runtime to the VTL engine (the mechanism for identifying the instances to be processed are not part of the VTL specifications and depend on the implementation of the VTL-based systems). As already said, the SDMX Datasets are instances of SDMX Dataflows, therefore a VTL Transformation defined on some SDMX Dataflows can be applied on some corresponding SDMX Datasets. 1444 +While the VTL Transformations are defined in term of Dataflow definitions, they are assumed to be executed on instances of such Dataflows, provided at runtime to the VTL engine (the mechanism for identifying the instances to be processed are not part of the VTL specifications and depend on the implementation of the VTL-based systems). As already said, the SDMX Datasets are instances of SDMX Dataflows, therefore a VTL Transformation defined on some SDMX Dataflows can be applied on some corresponding SDMX Datasets. 1287 1287 1288 1288 A VTL Data Set is structured by one and just one Data Structure and a VTL Data Structure can structure any number of Data Sets. Correspondingly, in the SDMX context a SDMX Dataflow is structured by one and just one DataStructureDefinition and one DataStructureDefinition can structure any number of Dataflows. 1289 1289 1290 -A VTL Data Set has a Data Structure made of Components, which in turn can be Identifiers, Measures and Attributes. Similarly, a SDMX DataflowDefinition has a DataStructureDefinition made of components that can be DimensionComponents, PrimaryMeasure and DataAttributes. In turn, a SDMX DimensionComponent can be a Dimension, a TimeDimension or a MeasureDimension. Correspondingly, in the SDMX implementation of the VTL, the VTL Identifiers can be (optionally) distinguished in three sub-classes (Simple Identifier, Time Identifier, Measure Identifier) even if such a distinction is not evidenced in the VTL IM.1448 +A VTL Data Set has a Data Structure made of Components, which in turn can be Identifiers, Measures and Attributes. Similarly, a SDMX DataflowDefinition has a DataStructureDefinition made of components that can be DimensionComponents, PrimaryMeasure and DataAttributes. In turn, a 1291 1291 1292 - However, a VTLDataStructurecanhave any numberof Identifiers,Measures andAttributes,whileaSDMX 2.1 DataStructureDefinitioncanhave any number ofDimensionsand DataAttributes but justone PrimaryMeasure[[(% class="wikiinternallinkwikiinternallinkwikiinternallinkwikiinternallinkwikiinternallinkwikiinternallinkwikiinternallink wikiinternallinkwikiinternallinkwikiinternallinkwikiinternallink wikiinternallinkwikiinternallinkwikiinternallinkwikiinternallink wikiinternallinkwikiinternallinkwikiinternallink wikiinternallink"%)^^~[23~]^^>>path:#_ftn23]](%%). Thisis dueto adifferencebetweenSDMX2.1andVTLin the possible representationmethods ofthedata that containmoremeasures.1450 +SDMX DimensionComponent can be a Dimension, a TimeDimension or a MeasureDimension. Correspondingly, in the SDMX implementation of the VTL, the VTL Identifiers can be (optionally) distinguished in three sub-classes (Simple Identifier, Time Identifier, Measure Identifier) even if such a distinction is not evidenced in the VTL IM. 1293 1293 1294 - As forSDMX,becausethedatastructure cannotcontain morethanonemeasurecomponent(i.e.,the primaryMeasure),the representationof datahaving moremeasuresis possible onlybymeansofaparticulardimension, calledMeasureDimension,whichis aimedatcontainingthenameofthemeasureconcepts, sothatforeachobservationthevaluecontained in thePrimaryMeasurecomponentisthevalueof themeasureconceptreportedin theMeasureDimension component.1452 +However, a VTL Data Structure can have any number of Identifiers, Measures and Attributes, while a SDMX 2.1 DataStructureDefinition can have any number of Dimensions and DataAttributes but just one PrimaryMeasure[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[23~]^^>>path:#_ftn23]](%%). This is due to a difference between SDMX 2.1 and VTL in the possible representation methods of the data that contain more measures. 1295 1295 1296 - InsteadVTLallowseitherthemethodabove(anidentifier containingthe nameof the measuretogether withjust one measure component)oramoregenericmethodthatconsistsindefiningmore measure componentsinthedatastructure,oneforeachmeasure.1454 +As for SDMX, because the data structure cannot contain more than one measure component (i.e., the primaryMeasure), the representation of data having more measures is possible only by means of a particular dimension, called MeasureDimension, which is aimed at containing the name of the measure concepts, so that for each observation the value contained in the PrimaryMeasure component is the value of the measure concept reported in the MeasureDimension component. 1297 1297 1456 +Instead VTL allows either the method above (an identifier containing the name of the measure together with just one measure component) or a more generic method that consists in defining more measure components in the data structure, one for each measure. 1457 + 1298 1298 Therefore for multi-measure data more mapping options are possible, as described in more detail in the following sections. 1299 1299 1300 1300 === 10.3.3 Mapping from SDMX to VTL data structures === 1301 1301 1302 - ====10.3.3.1 Basic Mapping****====1462 +**10.3.3.1 Basic Mapping ** 1303 1303 1304 -The main mapping method from SDMX to VTL is called **Basic **mapping. This is considered as the default mapping method and is applied unless a different method is specified through the VtlMappingScheme and VtlDataflowMapping classes. 1464 +The main mapping method from SDMX to VTL is called **Basic **mapping. This is considered as the default mapping method and is applied unless a different method is specified through the VtlMappingScheme and VtlDataflowMapping classes. 1842 When transforming **from SDMX to VTL**, this method consists in leaving the 1843 components unchanged and maintaining their names and roles, according to the 1844 following table: 1305 1305 1306 -When transforming **from SDMX to VTL**, this method consists in leaving the components unchanged and maintaining their names and roles, according to the following table: 1466 +|SDMX|VTL 1467 +|Dimension|(Simple) Identifier 1468 +|Time Dimension|(Time) Identifier 1469 +|Measure Dimension|(Measure) Identifier 1470 +|Primary Measure|Measure 1471 +|Data Attribute|Attribute 1307 1307 1308 -(% style="width:636.294px" %) 1309 -|(% style="width:286px" %)**SDMX**|(% style="width:347px" %)**VTL** 1310 -|(% style="width:286px" %)Dimension|(% style="width:347px" %)(Simple) Identifier 1311 -|(% style="width:286px" %)Time Dimension|(% style="width:347px" %)(Time) Identifier 1312 -|(% style="width:286px" %)Measure Dimension|(% style="width:347px" %)(Measure) Identifier 1313 -|(% style="width:286px" %)Primary Measure|(% style="width:347px" %)Measure 1314 -|(% style="width:286px" %)Data Attribute|(% style="width:347px" %)Attribute 1473 +According to this method, the resulting VTL structures are always mono-measure 1315 1315 1316 - According to this method, the resulting VTL structures are always mono-measure(i.e., they have just one measure component) and their Measure is the SDMXPrimaryMeasure. Nevertheless, if the SDMX data structure has a MeasureDimension, which can convey the name of one or more measure concepts, such unique measure component can contain the value of more (conceptual) measures (one for each observation).1475 +(i.e., they have just one measure component) and their Measure is the SDMX 1317 1317 1477 +PrimaryMeasure. Nevertheless, if the SDMX data structure has a MeasureDimension, which can convey the name of one or more measure concepts, such unique measure component can contain the value of more (conceptual) measures (one for each observation). 1478 + 1318 1318 As for the SDMX DataAttributes, in VTL they are all considered “at data point / observation level” (i.e. dependent on all the VTL Identifiers), because VTL does not have the SDMX AttributeRelationships, which defines the construct to which the DataAttribute is related (e.g. observation, dimension or set or group of dimensions, whole data set). 1319 1319 1320 1320 With the Basic mapping, one SDMX observation generates one VTL data point. 1321 1321 1322 - ====10.3.3.2 Pivot Mapping====1483 +**10.3.3.2 Pivot Mapping ** 1323 1323 1324 -An alternative mapping method from SDMX to VTL is the **Pivot **mapping, which is different from the Basic method only for the SDMX data structures that contain a MeasureDimension, which are mapped to multi-measure VTL data structures. 1485 +An alternative mapping method from SDMX to VTL is the **Pivot **mapping, which is different from the Basic method only for the SDMX data structures that contain a MeasureDimension, which are mapped to multi-measure VTL data structures. 1325 1325 1326 1326 The SDMX structures that do not contain a MeasureDimension are mapped like in the Basic mapping (see the previous paragraph). 1327 1327 ... ... @@ -1332,34 +1332,36 @@ 1332 1332 * The SDMX MeasureDimension is not mapped to VTL (it disappears in the VTL Data Structure); 1333 1333 * The SDMX PrimaryMeasure is not mapped to VTL as well (it disappears in the VTL Data Structure); 1334 1334 * A SDMX DataAttribute is mapped in different ways according to its AttributeRelationship: 1335 -** If, according to the SDMX AttributeRelationship, the values of the DataAttribute do not depend on the values of the MeasureDimension, the SDMX DataAttribute becomes a VTL Attribute having the same name. This happens if the AttributeRelationship is not specified (i.e. the DataAttribute does not depend on any DimensionComponent and therefore is at data set level), or if it refers to a set (or a group) of dimensions which does not include the MeasureDimension; 1336 -** Otherwise if, according to the SDMX AttributeRelationship, the values of the DataAttribute depend on the MeasureDimension, the SDMX DataAttribute is mapped to one VTL Attribute for each possible Concept of the SDMX MeasureDimension; by default, the names of the VTL Attributes are obtained by concatenating the name of the SDMX DataAttribute and the names of the correspondent 1496 +** If, according to the SDMX AttributeRelationship, the values of the DataAttribute do not depend on the values of the MeasureDimension, the SDMX DataAttribute becomes a VTL Attribute having the same name. This happens if the AttributeRelationship is not specified (i.e. the DataAttribute does not depend on any DimensionComponent and therefore is at data set level), or if it refers to a set (or a group) of dimensions which does not include the MeasureDimension; 1497 +** Otherwise if, according to the SDMX AttributeRelationship, the values of the DataAttribute depend on the MeasureDimension, the SDMX DataAttribute is mapped to one VTL Attribute for each possible Concept of the SDMX MeasureDimension; by default, the names of the VTL Attributes are obtained by concatenating the name of the SDMX DataAttribute and the names of the correspondent 1337 1337 1338 1338 Concept of the MeasureDimension separated by underscore; for example, if the SDMX DataAttribute is named DA and the possible concepts of the SDMX MeasureDimension are named C1, C2, …, Cn, then the corresponding VTL Attributes will be named DA_C1, DA_C2, …, DA_Cn (if different names are desired, they can be achieved afterwards by renaming the Attributes through VTL operators). o Like in the Basic mapping, the resulting VTL Attributes are considered as dependent on all the VTL identifiers (i.e. “at data point / observation level”), because VTL does not have the SDMX notion of Attribute Relationship. 1339 1339 1340 1340 The summary mapping table of the “pivot” mapping from SDMX to VTL for the SDMX data structures that contain a MeasureDimension is the following: 1341 1341 1342 -(% style="width:941.294px" %) 1343 -|(% style="width:441px" %)**SDMX**|(% style="width:497px" %)**VTL** 1344 -|(% style="width:441px" %)Dimension|(% style="width:497px" %)(Simple) Identifier 1345 -|(% style="width:441px" %)TimeDimension|(% style="width:497px" %)(Time) Identifier 1346 -|(% style="width:441px" %)MeasureDimension & PrimaryMeasure|(% style="width:497px" %)One Measure for each Concept of the SDMX Measure Dimension 1347 -|(% style="width:441px" %)DataAttribute not depending on the MeasureDimension|(% style="width:497px" %)Attribute 1348 -|(% style="width:441px" %)DataAttribute depending on the MeasureDimension|(% style="width:497px" %)One Attribute for each Concept of the SDMX Measure Dimension 1503 +|SDMX|VTL 1504 +|Dimension|(Simple) Identifier 1505 +|TimeDimension|(Time) Identifier 1506 +|MeasureDimension & PrimaryMeasure|One Measure for each Concept of the SDMX Measure Dimension 1507 +|DataAttribute not depending on the MeasureDimension|Attribute 1508 +|DataAttribute depending on the MeasureDimension|One Attribute for each Concept of the SDMX Measure Dimension 1349 1349 1350 -Using this mapping method, the components of the data structure can change in the conversion from SDMX to VTL and it must be taken into account that the VTL statements can reference only the components of the resulting VTL data structure. 1510 +Using this mapping method, the components of the data structure can change in the conversion from SDMX to VTL and it must be taken into account that the VTL 1908 statements can reference only the components of the resulting VTL data structure. 1351 1351 1352 -At observation / data point level, calling Cj (j=1, … n) the j^^th^^ Concept of the MeasureDimension: 1512 +At observation / data point level, calling Cj (j=1, … n) the j^^th^^ Concept of the 1911 MeasureDimension: 1353 1353 1354 -* The set of SDMX observations having the same values for all the Dimensions except than the MeasureDimension become one multi-measure VTL Data Point, having one Measure for each Concept Cj of the SDMX MeasureDimension; 1355 -* The values of the SDMX simple Dimensions, TimeDimension and DataAttributes not depending on the MeasureDimension (these components by definition have always the same values for all the observations of the set above) become the values of the corresponding VTL (simple) Identifiers, (time) Identifier and Attributes. 1356 -* The value of the PrimaryMeasure of the SDMX observation belonging to the set above and having MeasureDimension=Cj becomes the value of the VTL Measure Cj 1357 -* For the SDMX DataAttributes depending on the MeasureDimension, the value of the DataAttribute DA of the SDMX observation belonging to the set above and having MeasureDimension=Cj becomes the value of the VTL Attribute DA_Cj 1514 + The set of SDMX observations having the same values for all the Dimensions except than the MeasureDimension become one multi-measure VTL Data Point, having one Measure for each Concept Cj of the SDMX MeasureDimension; 1358 1358 1359 -==== 10.3.3.3 From SDMX DataAttributes to VTL Measures ==== 1516 +* 1517 +** The values of the SDMX simple Dimensions, TimeDimension and DataAttributes not depending on the MeasureDimension (these components by definition have always the same values for all the observations of the set above) become the values of the corresponding VTL (simple) Identifiers, (time) Identifier and Attributes. 1518 +** The value of the PrimaryMeasure of the SDMX observation belonging to the set above and having MeasureDimension=Cj becomes the value of the VTL Measure Cj 1519 +** For the SDMX DataAttributes depending on the MeasureDimension, the value of the DataAttribute DA of the SDMX observation belonging to the set above and having MeasureDimension=Cj becomes the value of the VTL Attribute DA_Cj 1360 1360 1361 -* In some cases it may happen that the DataAttributes of the SDMX DataStructure need to be managed as Measures in VTL.Therefore, a variant of both themethodsabove consists in transforming all theSDMX DataAttributesin VTL Measures. When DataAttributes are convertedto Measures, the two methods above are called Basic_A2M and Pivot_A2M (the suffix “A2M” stands for Attributes to Measures). Obviously, the resultingVTLdata structureis, in general, multi-measureand doesnot contain Attributes.1521 +**10.3.3.3 From SDMX DataAttributes to VTL Measures ** 1362 1362 1523 +* 1524 +** In some cases it may happen that the DataAttributes of the SDMX DataStructure need to be managed as Measures in VTL. Therefore, a variant of both the methods above consists in transforming all the SDMX DataAttributes in VTL Measures. When DataAttributes are converted to Measures, the two methods above are called Basic_A2M and Pivot_A2M (the suffix “A2M” stands for Attributes to Measures). Obviously, the resulting VTL data structure is, in general, multi-measure and does not contain Attributes. 1525 + 1363 1363 The Basic_A2M and Pivot_A2M behaves respectively like the Basic and Pivot methods, except that the final VTL components, which according to the Basic and Pivot methods would have had the role of Attribute, assume instead the role of Measure. 1364 1364 1365 1365 Proper VTL features allow changing the role of specific attributes even after the SDMX to VTL mapping: they can be useful when only some of the DataAttributes need to be managed as VTL Measures. ... ... @@ -1366,27 +1366,28 @@ 1366 1366 1367 1367 === 10.3.4 Mapping from VTL to SDMX data structures === 1368 1368 1369 - ====10.3.4.1 Basic Mapping****====1532 +**10.3.4.1 Basic Mapping ** 1370 1370 1371 1371 The main mapping method **from VTL to SDMX** is called **Basic **mapping as well. 1372 1372 1373 -This is considered as the default mapping method and is applied unless a different method is specified through the VtlMappingScheme and VtlDataflowMapping classes. 1536 +This is considered as the default mapping method and is applied unless a different method is specified through the VtlMappingScheme and VtlDataflowMapping classes. 1374 1374 1375 1375 The method consists in leaving the components unchanged and maintaining their names and roles in SDMX, according to the following mapping table, which is the same as the basic mapping from SDMX to VTL, only seen in the opposite direction. 1376 1376 1377 -This mapping method cannot be applied for SDMX 2.1 if the VTL data structure has more than one measure component, given that the SDMX 2.1 DataStructureDefinition allows just one measure component (the PrimaryMeasure). In this case it becomes mandatory to specify a different mapping method through the VtlMappingScheme and VtlDataflowMapping classes.[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[24~]^^>>path:#_ftn24]](%%)1540 +This mapping method cannot be applied for SDMX 2.1 if the VTL data structure has more than one measure component, given that the SDMX 2.1 DataStructureDefinition allows just one measure component (the 1378 1378 1379 -P lease notethattheVTLmeasurescanhaveanynamewhileinSDMX 2.1the MeasureComponent hasthe mandatory name “obs_value”,thereforethenameoftheVTL measurenamemustbecome “obs_value”inSDMX2.1.1542 +PrimaryMeasure). In this case it becomes mandatory to specify a different 1958 mapping method through the VtlMappingScheme and VtlDataflowMapping 1959 classes.[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[24~]^^>>path:#_ftn24]](%%) 1380 1380 1544 +1960 Please note that the VTL measures can have any name while in SDMX 2.1 the 1961 MeasureComponent has the mandatory name “obs_value”, therefore the name of the VTL measure name must become “obs_value” in SDMX 2.1. 1545 + 1381 1381 Mapping table: 1382 1382 1383 -(% style="width:592.294px" %) 1384 -|(% style="width:253px" %)**VTL**|(% style="width:336px" %)**SDMX** 1385 -|(% style="width:253px" %)(Simple) Identifier|(% style="width:336px" %)Dimension 1386 -|(% style="width:253px" %)(Time) Identifier|(% style="width:336px" %)TimeDimension 1387 -|(% style="width:253px" %)(Measure) Identifier|(% style="width:336px" %)MeasureDimension 1388 -|(% style="width:253px" %)Measure|(% style="width:336px" %)PrimaryMeasure 1389 -|(% style="width:253px" %)Attribute|(% style="width:336px" %)DataAttribute 1548 +|VTL|SDMX 1549 +|(Simple) Identifier|Dimension 1550 +|(Time) Identifier|TimeDimension 1551 +|(Measure) Identifier|MeasureDimension 1552 +|Measure|PrimaryMeasure 1553 +|Attribute|DataAttribute 1390 1390 1391 1391 If the distinction between simple identifier, time identifier and measure identifier is not maintained in the VTL environment, the classification between Dimension, TimeDimension and MeasureDimension exists only in SDMX, as declared in the relevant DataStructureDefinition. 1392 1392 ... ... @@ -1394,14 +1394,16 @@ 1394 1394 1395 1395 Note that the basic mappings in the two directions (from SDMX 2.1 to VTL 2.0 and vice-versa) are (almost completely) reversible. In fact, if a SDMX 2.1 structure is mapped to a VTL structure and then the latter is mapped back to SDMX 2.1, the resulting data structure is like the original one (apart for the AttributeRelationship, that can be different if the original SDMX 2.1 structure contains DataAttributes that are not at observation level). In reverse order, if a VTL 2.0 mono-measure structure is mapped to SDMX 2.1 and then the latter is mapped back to VTL 2.0, the original data structure is obtained (apart from the name of the VTL measure, that in SDMX 2.1 must become “obs_value”). 1396 1396 1397 -As said, the resulting SDMX definitions must be compliant with the SDMX consistency rules. For example, the SDMX DSD must have the assignmentStatus, which does not exist in VTL, the AttributeRelationship for the DataAttributes and so on. 1561 +As said, the resulting SDMX definitions must be compliant with the SDMX consistency rules. For example, the SDMX DSD must have the assignmentStatus, which does not exist in VTL, the AttributeRelationship for the DataAttributes and so on. 1398 1398 1399 - ====10.3.4.2 Unpivot Mapping====1563 +**10.3.4.2 Unpivot Mapping ** 1400 1400 1401 -An alternative mapping method from VTL to SDMX is the **Unpivot **mapping. 1565 +An alternative mapping method from VTL to SDMX is the **Unpivot **mapping. 1402 1402 1403 -Although this mapping method can be used in any case, it makes major sense in case the VTL data structure has more than one measure component (multi-measures VTL structure). For such VTL structures, in fact, the basic method cannot be applied, given that by maintaining the data structure unchanged the resulting SDMX data structure would have more than one measure component, which is not allowed by SDMX 2.1 (it allows just one measure component, the PrimaryMeasure, called “obs_value”).1567 +Although this mapping method can be used in any case, it makes major sense in case the VTL data structure has more than one measure component (multi-measures VTL structure). For such VTL structures, in fact, the basic method cannot be applied, given that by maintaining the data structure unchanged the resulting SDMX data structure would have more than one measure component, which is not allowed by SDMX 2.1 (it allows just one measure component, the PrimaryMeasure, called 1404 1404 1569 +“obs_value”). 1570 + 1405 1405 The multi-measures VTL structures have not a Measure Identifier (because the Measures are separate components) and need to be converted to SDMX dataflows having an added MeasureDimension which disambiguates the multiple measures, and an added PrimaryMeasure, in which the measures’ values are maintained. 1406 1406 1407 1407 The **unpivot** mapping behaves like follows: ... ... @@ -1408,34 +1408,43 @@ 1408 1408 1409 1409 * like in the basic mapping, a VTL (simple) identifier becomes a SDMX 1410 1410 1411 -Dimension and a VTL (time) identifier becomes a SDMX TimeDimension (as said, a measure identifier cannot exist in multi-measure VTL structures); 1577 +Dimension and a VTL (time) identifier becomes a SDMX TimeDimension (as said, a measure identifier cannot exist in multi-measure VTL structures); 1412 1412 1413 1413 * a MeasureDimension component called “measure_name” is added to the SDMX DataStructure; 1414 -* a PrimaryMeasure component called “obs_value” is added to the SDMX DataStructure; 1415 -* each VTL Measure is mapped to a Concept of the SDMX MeasureDimension having the same name as the VTL Measure (therefore all the VTL Measure Components do not originate Components in the SDMX DataStructure); 1416 -* a VTL Attribute becomes a SDMX DataAttribute having AttributeRelationship referred to all the SDMX DimensionComponents including the TimeDimension and except the MeasureDimension. 1580 +* a PrimaryMeasure component called “obs_value” is added to the SDMX DataStructure; 1581 +* each VTL Measure is mapped to a Concept of the SDMX MeasureDimension having the same name as the VTL Measure (therefore all the VTL Measure Components do not originate Components in the SDMX DataStructure); 1582 +* a VTL Attribute becomes a SDMX DataAttribute having AttributeRelationship referred to all the SDMX DimensionComponents including the TimeDimension and except the MeasureDimension. 1417 1417 1418 1418 The summary mapping table of the **unpivot** mapping method is the following: 1419 1419 1420 -(% style="width:904.294px" %) 1421 -|(% style="width:291px" %)**VTL**|(% style="width:611px" %)**SDMX** 1422 -|(% style="width:291px" %)(Simple) Identifier|(% style="width:611px" %)Dimension 1423 -|(% style="width:291px" %)(Time) Identifier|(% style="width:611px" %)TimeDimension 1424 -|(% style="width:291px" %)All Measure Components|(% style="width:611px" %)((( 1425 -MeasureDimension (having one Measure Concept for each VTL measure component) & PrimaryMeasure 1586 + 1587 +|VTL|SDMX 1588 +|(Simple) Identifier|Dimension 1589 +|(Time) Identifier|TimeDimension 1590 +|All Measure Components|((( 1591 +MeasureDimension (having one Measure Concept for each VTL measure component) & 1592 + 1593 +PrimaryMeasure 1426 1426 ))) 1427 -|(% style="width:291px" %)Attribute |(% style="width:611px" %)((( 1428 -DataAttribute depending on all SDMX Dimensions including the TimeDimension and except the MeasureDimension 1595 +|Attribute |((( 1596 +DataAttribute depending on all 1597 + 1598 +SDMX Dimensions including the 1599 + 1600 +TimeDimension and except the MeasureDimension 1429 1429 ))) 1430 1430 1431 1431 At observation / data point level: 1432 1432 1433 -* a multi-measure VTL Data Point becomes a set of SDMX observations, one for each VTL measure 1434 -* the values of the VTL identifiers become the values of the corresponding SDMX Dimensions, for all the observations of the set above 1435 -* the name of the j^^th^^ VTL measure (e.g. “Cj”) becomes the value of the SDMX MeasureDimension of the j^^th^^ observation of the set (i.e. the Concept Cj) 1436 -* the value of the j^^th^^ VTL measure becomes the value of the SDMX PrimaryMeasure of the j^^th^^ observation of the set 1437 -* the values of the VTL Attributes become the values of the corresponding SDMX DataAttributes (in principle for all the observations of the set above) 1605 + a multi-measure VTL Data Point becomes a set of SDMX observations, one for each VTL measure 1438 1438 1607 + the values of the VTL identifiers become the values of the corresponding SDMX Dimensions, for all the observations of the set above 1608 + 1609 +* 1610 +** the name of the j^^th^^ VTL measure (e.g. “Cj”) becomes the value of the SDMX MeasureDimension of the j^^th^^ observation of the set (i.e. the Concept Cj) 1611 +** the value of the j^^th^^ VTL measure becomes the value of the SDMX PrimaryMeasure of the j^^th^^ observation of the set 1612 +** the values of the VTL Attributes become the values of the corresponding SDMX DataAttributes (in principle for all the observations of the set above) 1613 + 1439 1439 If desired, this method can be applied also to mono-measure VTL structures, provided that none of the VTL components has already the role of measure identifier. 1440 1440 1441 1441 Like in the general case, a MeasureDimension component called “measure_name” would be added to the SDMX DataStructure and would have just one possible measure concept, corresponding to the unique VTL measure. The original VTL measure component would not become a Component in the SDMX data structure. The value of the VTL measure would be assigned to the SDMX PrimaryMeasure called “obs_value”. ... ... @@ -1442,150 +1442,219 @@ 1442 1442 1443 1443 In any case, the resulting SDMX definitions must be compliant with the SDMX consistency rules. For example, the possible Concepts of the SDMX MeasureDimension need to be listed in a SDMX ConceptScheme, with proper id, agency and version; moreover, the SDMX DSD must have the assignmentStatus, which does not exist in VTL, the attributeRelationship for the DataAttributes and so on. 1444 1444 1445 - ====10.3.4.3 From VTL Measures to SDMX Data Attributes****====1620 +**10.3.4.3 From VTL Measures to SDMX Data Attributes ** 1446 1446 1447 1447 For the multi-measure VTL structures (having more than one Measure Component), it may happen that the Measures of the VTL Data Structure need to be managed as DataAttributes in SDMX. Therefore a third mapping method consists in transforming one VTL measure in the SDMX primaryMeasure and all the other VTL Measures in SDMX DataAttributes. This method is called M2A (“M2A” stands for “Measures to DataAttributes”). 1448 1448 1449 1449 When applied to mono-measure VTL structures (having one Measure component), the M2A method behaves like the Basic mapping (the VTL Measure component becomes the SDMX primary measure “obs_value”, there is no additional VTL measure to be converted to SDMX DataAttribute). Therefore the mapping table is the same as for the Basic method: 1450 1450 1451 -(% style="width:591.294px" %) 1452 -|(% style="width:252px" %)**VTL**|(% style="width:336px" %)**SDMX** 1453 -|(% style="width:252px" %)(Simple) Identifier|(% style="width:336px" %)Dimension 1454 -|(% style="width:252px" %)(Time) Identifier|(% style="width:336px" %)TimeDimension 1455 -|(% style="width:252px" %)(Measure) Identifier (if any)|(% style="width:336px" %)MeasureDimension 1456 -|(% style="width:252px" %)Measure|(% style="width:336px" %)PrimaryMeasure 1457 -|(% style="width:252px" %)Attribute|(% style="width:336px" %)DataAttribute 1626 +|VTL|SDMX 1627 +|(Simple) Identifier|Dimension 1628 +|(Time) Identifier|TimeDimension 1629 +|(Measure) Identifier (if any)|MeasureDimension 1630 +|Measure|PrimaryMeasure 1631 +|Attribute|DataAttribute 1458 1458 1459 -For multi-measure VTL structures (having more than one Measure component), one VTL Measure becomes the SDMX PrimaryMeasure while the other VTL Measures maintain their names and values but assume the role of DataAttribute in SDMX. The choice of the VTL Measure that correspond to the SDMX PrimaryMeasure is left to the definer of the SDMX data structure definition. 1633 +For multi-measure VTL structures (having more than one Measure component), one VTL Measure becomes the SDMX PrimaryMeasure while the other VTL Measures maintain their names and values but assume the role of DataAttribute in SDMX. The choice of the VTL Measure that correspond to the SDMX PrimaryMeasure is left to the definer of the SDMX data structure definition. 1460 1460 1461 -Taking into account that the multi-measure VTL structures do not have a measure identifier, the mapping table is the following: 1635 +2Taking into account that the multi-measure VTL structures do not have a measure 2073 identifier, the mapping table is the following: 1462 1462 1463 -(% style="width:588.294px" %) 1464 -|(% style="width:259px" %)**VTL**|(% style="width:326px" %)**SDMX** 1465 -|(% style="width:259px" %)(Simple) Identifier|(% style="width:326px" %)Dimension 1466 -|(% style="width:259px" %)(Time) Identifier|(% style="width:326px" %)TimeDimension 1467 -|(% style="width:259px" %)One of the Measures|(% style="width:326px" %)PrimaryMeasure 1468 -|(% style="width:259px" %)Other Measures|(% style="width:326px" %)DataAttribute 1469 -|(% style="width:259px" %)Attribute|(% style="width:326px" %)DataAttribute 1637 +|VTL|SDMX 1638 +|(Simple) Identifier|Dimension 1639 +|(Time) Identifier|TimeDimension 1640 +|One of the Measures|PrimaryMeasure 1641 +|Other Measures|DataAttribute 1642 +|Attribute|DataAttribute 1470 1470 1471 -Even in this case, the resulting SDMX definitions must be compliant with the SDMX consistency rules. For example, the SDMX DSD must have the assignmentStatus, which does not exist in VTL, the attributeRelationship for the DataAttributes and so on. In particular, the primaryMeasure of the SDMX 2.1 DSD must be called “obs_value” and must be one of the VTL Measures, chosen by the DSD definer. 1644 +Even in this case, the resulting SDMX definitions must be compliant with the SDMX consistency rules. For example, the SDMX DSD must have the assignmentStatus, which does not exist in VTL, the attributeRelationship for the DataAttributes and so on. In particular, the primaryMeasure of the SDMX 2.1 DSD must be called “obs_value” and must be one of the VTL Measures, chosen by the DSD definer. 1472 1472 1473 1473 === 10.3.5 Declaration of the mapping methods between data structures === 1474 1474 1475 1475 In order to define and understand properly VTL transformations, the applied mapping methods must be specified in the SDMX structural metadata. If the default mapping method (Basic) is applied, no specification is needed. 1476 1476 1650 + 1477 1477 A customized mapping can be defined through the VtlMappingScheme and VtlDataflowMapping classes (see the section of the SDMX IM relevant to the VTL). A VtlDataflowMapping allows specifying the mapping methods to be used for a specific dataflow, both in the direction from SDMX to VTL (toVtlMappingMethod) and from VTL to SDMX (fromVtlMappingMethod); in fact a VtlDataflowMapping associates the structured URN that identifies a SDMX dataflow to its VTL alias and its mapping methods. 1478 1478 1479 -It is possible to specify the toVtlMappingMethod and fromVtlMappingMethod also for the conventional dataflow called “generic_dataflow”: in this case the specified mapping methods are intended to become the default ones, overriding the “Basic” methods. In turn, the toVtlMappingMethod and fromVtlMappingMethod declared for a specific Dataflow are intended to override the default ones for such a Dataflow.1653 +It is possible to specify the toVtlMappingMethod and fromVtlMappingMethod also for the conventional dataflow called “generic_dataflow”: in this case the specified mapping methods are intended to become the default ones, overriding the 1480 1480 1655 +“Basic” methods. In turn, the toVtlMappingMethod and fromVtlMappingMethod declared for a specific Dataflow are intended to override the default ones for such a Dataflow. 1656 + 1481 1481 The VtlMappingScheme is a container for zero or more VtlDataflowMapping (besides possible mappings to artefacts other than dataflows). 1482 1482 1483 -=== 10.3.6 Mapping dataflow subsets to distinct VTL data sets[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^**~[25~]**^^>>path:#_ftn25]](%%) ===1659 +=== 10.3.6 Mapping dataflow subsets to distinct VTL data sets[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^**~[25~]**^^>>path:#_ftn25]](%%) === 1484 1484 1485 -Until now it as been assumed to map one SMDX Dataflow to one VTL dataset and vice-versa. This mapping one-to-one is not mandatory according to VTL because a VTL data set is meant to be a set of observations (data points) on a logical plane, having the same logical data structure and the same general meaning, independently of the possible physical representation or storage (see VTL 2.0 User Manual page 24), therefore a SDMX Dataflow can be seen either as a unique set of data observations (corresponding to one VTL data set) or as the union of many sets of data observations (each one corresponding to a distinct VTL data set).1661 +Until now it as been assumed to map one SMDX Dataflow to one VTL dataset and vice-versa. This mapping one-to-one is not mandatory according to VTL because a VTL data set is meant to be a set of observations (data points) on a logical plane, having the same logical data structure and the same general meaning, independently of the possible physical representation or storage (see VTL 2.0 User Manual page 1486 1486 1487 - Asa matteroffact, in somecasesit can beuseful to defineVTL operationsinvolvingdefiniteparts of aSDMX Dataflowinsteadthanthe whole.[[(%class="wikiinternallink wikiinternallink wikiinternallinkwikiinternallinkwikiinternallinkwikiinternallinkwikiinternallinkwikiinternallinkwikiinternallinkwikiinternallinkwikiinternallinkwikiinternallinkwikiinternallinkwikiinternallinkwikiinternallinkwikiinternallinkwikiinternallinkwikiinternallinkwikiinternallink"%)^^~[26~]^^>>path:#_ftn26]](%%)1663 +24), therefore a SDMX Dataflow can be seen either as a unique set of data observations (corresponding to one VTL data set) or as the union of many sets of data observations (each one corresponding to a distinct VTL data set). 1488 1488 1489 - Therefore, in ordertomakethecodingofVTL operationssimpler whenapplied onparts ofSDMX Dataflows,itis allowedto mapdistinct parts of a SDMX Dataflowto distinct VTL datasetsaccordingto the following rulesandconventions. This kind of mapping is possiblebothfrom SDMX to VTL and from VTL to SDMX, as better explained below.[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallinkwikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[27~]^^>>path:#_ftn27]](%%)1665 +As a matter of fact, in some cases it can be useful to define VTL operations involving definite parts of a SDMX Dataflow instead than the whole.[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[26~]^^>>path:#_ftn26]](%%) 1490 1490 1491 - Given a SDMX DataflowandsomepredefinedDimensions ofitsDataStructure, it is allowed to map thesubsets of observationsthathavethe samecombination ofvaluesforsuchDimensionstocorrespondentVTL datasets.1667 +Therefore, in order to make the coding of VTL operations simpler when applied on parts of SDMX Dataflows, it is allowed to map distinct parts of a SDMX Dataflow to distinct VTL data sets according to the following rules and conventions. This kind of mapping is possible both from SDMX to VTL and from VTL to SDMX, as better explained below.[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[27~]^^>>path:#_ftn27]](%%) 1492 1492 1493 - Forexample,assumingthattheSDMXdataflowDF1(1.0)hastheDimensionsINDICATOR,TIME_PERIODandCOUNTRY,andthatthe user declares the DimensionsINDICATORandCOUNTRYasbasisforthemapping (i.e.the mapping dimensions): theobservationsthathavethesamevalues forINDICATORandCOUNTRYwould be mappedto thesame VTL dataset (and vice-versa).1669 + Given a SDMX Dataflow and some predefined Dimensions of its 1494 1494 1671 +DataStructure, it is allowed to map the subsets of observations that have the same combination of values for such Dimensions to correspondent VTL datasets. 1672 + 1673 +For example, assuming that the SDMX dataflow DF1(1.0) has the Dimensions INDICATOR, TIME_PERIOD and COUNTRY, and that the user declares the 1674 + 1675 +Dimensions INDICATOR and COUNTRY as basis for the mapping (i.e. the mapping dimensions): the observations that have the same values for INDICATOR and COUNTRY would be mapped to the same VTL dataset (and vice-versa). 1676 + 1495 1495 In practice, this kind mapping is obtained like follows: 1496 1496 1497 -* For a given SDMX dataflow, the user (VTL definer) declares the dimension components on which the mapping will be based, in a given order.[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[28~]^^>>path:#_ftn28]](%%) Following the example above, imagine that the user declares the dimensions INDICATOR and COUNTRY.1679 +* For a given SDMX dataflow, the user (VTL definer) declares the dimension components on which the mapping will be based, in a given order.[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[28~]^^>>path:#_ftn28]](%%) Following the example above, imagine that the user declares the dimensions INDICATOR and COUNTRY. 1498 1498 * The VTL dataset is given a name using a special notation also called “ordered concatenation” and composed of the following parts: 1499 -** The reference to the SDMX dataflow (expressed according to the rules described in the previous paragraphs, i.e. URN, abbreviated URN or another alias); for example DF(1.0); 1500 -** a slash (“/”) as a separator; [[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[29~]^^>>path:#_ftn29]] 1501 -** The reference to a specific part of the SDMX dataflow above, expressed as the concatenation of the values that the SDMX dimensions declared above must have, separated by dots (“.”) and written in the order in which these dimensions are defined[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[30~]^^>>path:#_ftn30]](%%). For example POPULATION.USA would mean that such a VTL dataset is mapped to the SDMX observations for which the dimension //INDICATOR// is equal to POPULATION and the dimension //COUNTRY// is equal to USA. 1681 +** The reference to the SDMX dataflow (expressed according to the rules described in the previous paragraphs, i.e. URN, abbreviated 1502 1502 1683 +URN or another alias); for example DF(1.0); o a slash (“/”) as a separator; [[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[29~]^^>>path:#_ftn29]] 1684 + 1685 +* 1686 +** The reference to a specific part of the SDMX dataflow above, expressed as the concatenation of the values that the SDMX dimensions declared above must have, separated by dots (“.”) and written in the order in which these dimensions are defined[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[30~]^^>>path:#_ftn30]](%%) . For example POPULATION.USA would mean that such a VTL dataset is mapped to the SDMX observations for which the dimension //INDICATOR// is equal to POPULATION and the dimension //COUNTRY// is equal to USA. 1687 + 1503 1503 In the VTL transformations, this kind of dataset name must be referenced between single quotes because the slash (“/”) is not a regular character according to the VTL rules. 1504 1504 1505 1505 Therefore, the generic name of this kind of VTL datasets would be: 1506 1506 1507 - >‘DF(1.0)///INDICATORvalue//.//COUNTRYvalue//’1692 +‘DF(1.0)///INDICATORvalue//.//COUNTRYvalue//’ 1508 1508 1509 1509 Where DF(1.0) is the Dataflow and //INDICATORvalue// and //COUNTRYvalue //are placeholders for one value of the INDICATOR and // //COUNTRY dimensions. 1510 1510 1511 1511 Instead the specific name of one of these VTL datasets would be: 1512 1512 1513 - >‘DF(1.0)/POPULATION.USA’1698 +‘DF(1.0)/POPULATION.USA’ 1514 1514 1515 -In particular, this is the VTL dataset that contains all the observations of the dataflow DF(1.0) for which //INDICATOR// = POPULATION and //COUNTRY// = USA. 1700 +In particular, this is the VTL dataset that contains all the observations of the dataflow DF(1.0) for which //INDICATOR// = POPULATION and //COUNTRY// = USA. 1516 1516 1517 1517 Let us now analyse the different meaning of this kind of mapping in the two mapping directions, i.e. from SDMX to VTL and from VTL to SDMX. 1518 1518 1519 -As already said, the mapping from SDMX to VTL happens when the VTL datasets are operand of VTL transformations, instead the mapping from VTL to SDMX happens when the VTL datasets are result of VTL transformations[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[31~]^^>>path:#_ftn31]](%%) and need to be treated as SDMX objects. This kind of mapping can be applied independently in the two directions and the Dimensions on which the mapping is based can be different in the two directions: these Dimensions are defined in the ToVtlSpaceKey and in the FromVtlSpaceKey classes respectively.1704 +As already said, the mapping from SDMX to VTL happens when the VTL datasets are operand of VTL transformations, instead the mapping from VTL to SDMX happens when the VTL datasets are result of VTL transformations[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[31~]^^>>path:#_ftn31]](%%) and need to be treated as SDMX objects. This kind of mapping can be applied independently in the two directions and the Dimensions on which the mapping is based can be different in the two directions: these Dimensions are defined in the ToVtlSpaceKey and in the FromVtlSpaceKey classes respectively. 1520 1520 1521 -First, let us see what happens in the __mapping direction from SDMX to VTL__, i.e. when parts of a SDMX dataflow (e.g. DF1(1.0)) need to be mapped to distinct VTL datasets that are operand of some VTL transformations.1706 +First, let us see what happens in the mapping direction from SDMX to VTL, i.e. when parts of a SDMX dataflow (e.g. DF1(1.0)) need to be mapped to distinct VTL datasets that are operand of some VTL transformations. 1522 1522 1523 -As already said, each VTL dataset is assumed to contain all the observations of the SDMX dataflow having INDICATOR=//INDICATORvalue //and COUNTRY=//COUNTRYvalue//. For example, the VTL dataset ‘DF1(1.0)/POPULATION.USA’ would contain all the observations of DF1(1.0) having INDICATOR = POPULATION and COUNTRY = USA.1708 +As already said, each VTL dataset is assumed to contain all the observations of the 1524 1524 1525 - In order to obtain the data structure of these VTL datasets from theSDMXone, it is assumedthatthe SDMX dimensions onwhichthe mappingis based are dropped, i.e. not maintained in the VTL data structure; this is possible because theirvaluesare fixed for each one of the invokedVTL datasets[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[32~]^^>>path:#_ftn32]](%%). After that, the mapping method from SDMX to VTL specified for the dataflow DF1(1.0) is applied (i.e. basic, pivot …).1710 +SDMX dataflow having INDICATOR=//INDICATORvalue //and COUNTRY= 1526 1526 1527 - In the exampleabove,for allthe datasetsof the kind‘DF1(1.0)///INDICATORvalue//.//COUNTRYvalue//’,the dimensions INDICATOR and COUNTRYwouldbe dropped sothatthe data structure of all theresulting VTL datasetswouldhave theidentifierTIME_PERIODonly.1712 +//COUNTRYvalue//. For example, the VTL dataset ‘DF1(1.0)/POPULATION.USA’ would contain all the observations of DF1(1.0) having INDICATOR = POPULATION and COUNTRY = USA. 1528 1528 1714 +In order to obtain the data structure of these VTL datasets from the SDMX one, it is assumed that the SDMX dimensions on which the mapping is based are dropped, i.e. not maintained in the VTL data structure; this is possible because their values are fixed for each one of the invoked VTL datasets[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[32~]^^>>path:#_ftn32]](%%). After that, the mapping method from SDMX to VTL specified for the dataflow DF1(1.0) is applied (i.e. basic, pivot …). 1715 + 1716 +In the example above, for all the datasets of the kind 1717 + 1718 +‘DF1(1.0)///INDICATORvalue//.//COUNTRYvalue//’, the dimensions INDICATOR and COUNTRY would be dropped so that the data structure of all the resulting VTL data sets would have the identifier TIME_PERIOD only. 1719 + 1529 1529 It should be noted that the desired VTL datasets (i.e. of the kind ‘DF1(1.0)/// INDICATORvalue//.//COUNTRYvalue//’) can be obtained also by applying the VTL operator “**sub**” (subspace) to the dataflow DF1(1.0), like in the following VTL expression: 1530 1530 1531 -> ‘DF1(1.0)/POPULATION.USA’ := 1532 -> DF1(1.0) [ sub INDICATOR=“POPULATION”, COUNTRY=“USA” ]; 1533 -> ‘DF1(1.0)/POPULATION.CANADA’ := 1534 -> DF1(1.0) [ sub INDICATOR=“POPULATION”, COUNTRY=“CANADA” ]; 1535 -> … … … 1722 +‘DF1(1.0)/POPULATION.USA’ := 1536 1536 1537 - Infactthe VTL operator “sub”has exactly the same behaviour. Therefore, mapping different parts of a SDMX dataflow to different VTLdatasets in the direction from SDMX to VTLthrough the ordered concatenation notation is equivalent to a proper use of the operator“**sub**”on such a dataflow. [[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[33~]^^>>path:#_ftn33]]1724 +DF1(1.0) [ sub INDICATOR=“POPULATION”, COUNTRY=“USA” ]; 1538 1538 1726 + 1727 +‘DF1(1.0)/POPULATION.CANADA’ := 1728 + 1729 +DF1(1.0) [ sub INDICATOR=“POPULATION”, COUNTRY=“CANADA” ]; 1730 + 1731 + 1732 +… … … 1733 + 1734 +In fact the VTL operator “sub” has exactly the same behaviour. Therefore, mapping different parts of a SDMX dataflow to different VTL datasets in the direction from SDMX to VTL through the ordered concatenation notation is equivalent to a proper use of the operator “**sub**” on such a dataflow. [[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[33~]^^>>path:#_ftn33]] 1735 + 1539 1539 In the direction from SDMX to VTL it is allowed to omit the value of one or more Dimensions on which the mapping is based, but maintaining all the separating dots (therefore it may happen to find two or more consecutive dots and dots in the beginning or in the end). The absence of value means that for the corresponding Dimension all the values are kept and the Dimension is not dropped. 1540 1540 1541 -For example, ‘DF(1.0)/POPULATION.’ (note the dot in the end of the name) is the VTL dataset that contains all the observations of the dataflow DF(1.0) for which //INDICATOR// = POPULATION and COUNTRY = any value. 1738 +For example, ‘DF(1.0)/POPULATION.’ (note the dot in the end of the name) is the VTL dataset that contains all the observations of the dataflow DF(1.0) for which //INDICATOR// = POPULATION and COUNTRY = any value. 1542 1542 1543 1543 This is equivalent to the application of the VTL “sub” operator only to the identifier //INDICATOR//: 1544 1544 1545 -> ‘DF1(1.0)/POPULATION.’ := 1546 -> DF1(1.0) [sub INDICATOR=“POPULATION” ]; 1742 +‘DF1(1.0)/POPULATION.’ := 1547 1547 1744 +DF1(1.0) [ sub INDICATOR=“POPULATION” ]; 1745 + 1746 + 1548 1548 Therefore the VTL dataset ‘DF1(1.0)/POPULATION.’ would have the identifiers COUNTRY and TIME_PERIOD. 1549 1549 1550 1550 Heterogeneous invocations of the same Dataflow are allowed, i.e. omitting different Dimensions in different invocations. 1551 1551 1552 -Let us now analyse the __mapping direction from VTL to SDMX__.1751 +Let us now analyse the mapping direction from VTL to SDMX. 1553 1553 1554 1554 In this situation, distinct parts of a SDMX dataflow are calculated as distinct VTL datasets, under the constraint that they must have the same VTL data structure. 1555 1555 1556 1556 For example, let us assume that the VTL programmer wants to calculate the SDMX dataflow DF2(1.0) having the Dimensions TIME_PERIOD, INDICATOR, and COUNTRY and that such a programmer finds it convenient to calculate separately the parts of DF2(1.0) that have different combinations of values for INDICATOR and COUNTRY: 1557 1557 1558 -* each part is calculated as a VTL derived dataset, result of a dedicated VTL transformation; [[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[34~]^^>>path:#_ftn34]](%%)1559 -* the data structure of all these VTL datasets has the TIME_PERIOD identifier and does not have the INDICATOR and COUNTRY identifiers.[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[35~]^^>>path:#_ftn35]]1757 +* each part is calculated as a VTL derived dataset, result of a dedicated VTL transformation; [[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[34~]^^>>path:#_ftn34]](%%) 1758 +* the data structure of all these VTL datasets has the TIME_PERIOD identifier and does not have the INDICATOR and COUNTRY identifiers.[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[35~]^^>>path:#_ftn35]] 1560 1560 1561 -Under these hypothesis, such derived VTL datasets can be mapped to DF2(1.0) by declaring the Dimensions INDICATOR and COUNTRY as mapping dimensions[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[36~]^^>>path:#_ftn36]](%%).1760 +Under these hypothesis, such derived VTL datasets can be mapped to DF2(1.0) by declaring the Dimensions INDICATOR and COUNTRY as mapping dimensions[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[36~]^^>>path:#_ftn36]](%%). 1562 1562 1563 -The corresponding VTL transformations, assuming that the result needs to be persistent, would be of this kind:^^ ^^[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[37~]^^>>path:#_ftn37]]1762 +The corresponding VTL transformations, assuming that the result needs to be persistent, would be of this kind:^^ ^^[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[37~]^^>>path:#_ftn37]] 1564 1564 1565 1565 ‘DF2(1.0)///INDICATORvalue//.//COUNTRYvalue//’ <- expression 1566 1566 1567 1567 Some examples follow, for some specific values of INDICATOR and COUNTRY: 1568 1568 1569 -‘DF2(1.0)/GDPPERCAPITA.USA’ <- expression11; 1768 + ‘DF2(1.0)/GDPPERCAPITA.USA’ <- expression11; 1769 + 1570 1570 ‘DF2(1.0)/GDPPERCAPITA.CANADA’ <- expression12; 1771 + 1571 1571 … … … 1572 -‘DF2(1.0)/POPGROWTH.USA’ <- expression21; 1573 -‘DF2(1.0)/POPGROWTH.CANADA’ <- expression22; 1574 1574 1774 + ‘DF2(1.0)/POPGROWTH.USA’ <- expression21; 1775 + 1776 + ‘DF2(1.0)/POPGROWTH.CANADA’ <- expression22; 1777 + 1575 1575 … … … 1576 1576 1577 -As said, it is assumed that these VTL derived datasets have the TIME_PERIOD as the only identifier. In the mapping from VTL to SMDX, the Dimensions INDICATOR and COUNTRY are added to the VTL data structure on order to obtain the SDMX one, with the following values respectively: 1578 1578 1579 - [[image:1747859458410-183.png||height="170"width="663"]]1781 +As said, it is assumed that these VTL derived datasets have the TIME_PERIOD as the only identifier. In the mapping from VTL to SMDX, the Dimensions INDICATOR and COUNTRY are added to the VTL data structure on order to obtain the SDMX one, with the following values respectively: 1580 1580 1581 -It should be noted that the application of this many-to-one mapping from VTL to SDMX is equivalent to an appropriate sequence of VTL Transformations. These use the VTL operator “calc” to add the proper VTL identifiers (in the example, INDICATOR and COUNTRY) and to assign to them the proper values and the operator “union” in order to obtain the final VTL dataset (in the example DF2(1.0)), that can be mapped one-to-one to the homonymous SDMX Dataflow. Following the same example, these VTL transformations would be: 1783 +|((( 1784 + //VTL dataset // 1582 1582 1583 -[[image:1747859612718-454.png||height="451" width="602"]] 1786 + 1787 +)))|(% colspan="2" %)//INDICATOR value //|(% colspan="2" %)//COUNTRY value// 1788 +|‘DF2(1.0)/GDPPERCAPITA.USA’ |GDPPERCAPITA| | |USA 1789 +|((( 1790 +‘DF2(1.0)/GDPPERCAPITA.CANADA’ 1584 1584 1585 -In other words, starting from the datasets explicitly calculated through VTL (in the example ‘DF2(1.0)/GDPPERCAPITA.USA’ and so on), the first step consists in calculating other (non-persistent) VTL datasets (in the example DF2bis_GDPPERCAPITA_USA and so on) by adding the identifiers INDICATOR and COUNTRY with the desired values (//INDICATORvalue// and //COUNTRYvalue)//. Finally, all these non-persistent data sets are united and give the final result DF2(1.0)[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[38~]^^>>path:#_ftn38]](%%), which can be mapped one-to-one to the homonymous SDMX dataflow having the dimension components TIME_PERIOD, INDICATOR and COUNTRY. 1792 +… … … 1793 +)))|GDPPERCAPITA| | |CANADA 1794 +|‘DF2(1.0)/POPGROWTH.USA’ |POPGROWTH | | |USA 1795 +|((( 1796 +‘DF2(1.0)/POPGROWTH.CANADA’ 1586 1586 1587 -Therefore, mapping different VTL datasets having the same data structure to different parts of a SDMX dataflow, i.e. in the direction from VTL to SDMX, through the ordered concatenation notation is equivalent to a proper use of the operators “calc” and “union” on such datasets. [[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[39~]^^>>path:#_ftn39]](%%)[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[40~]^^>>path:#_ftn40]] 1798 +… … … 1799 +)))|POPGROWTH | | |CANADA 1588 1588 1801 +It should be noted that the application of this many-to-one mapping from VTL to SDMX is equivalent to an appropriate sequence of VTL Transformations. These use the VTL operator “calc” to add the proper VTL identifiers (in the example, INDICATOR and COUNTRY) and to assign to them the proper values and the operator “union” in order to obtain the final VTL dataset (in the example DF2(1.0)), that can be mapped one-to-one to the homonymous SDMX Dataflow. Following the same example, these VTL transformations would be: 1802 + 1803 +DF2bis_GDPPERCAPITA_USA := ‘DF2(1.0)/GDPPERCAPITA.USA’ 1804 + 1805 +[calc identifier INDICATOR := ”GDPPERCAPITA”, identifier COUNTRY := ”USA”]; 1806 + 1807 +DF2bis_GDPPERCAPITA_CANADA := ‘DF2(1.0)/GDPPERCAPITA.CANADA’ [calc identifier INDICATOR:=”GDPPERCAPITA”, identifier COUNTRY:=”CANADA”]; … … … 1808 + 1809 +DF2bis_POPGROWTH_USA := ‘DF2(1.0)/POPGROWTH.USA’ 1810 + 1811 +[calc identifier INDICATOR := ”POPGROWTH”, identifier COUNTRY :=”USA”]; 1812 + 1813 +DF2bis_POPGROWTH_CANADA’ := ‘DF2(1.0)/POPGROWTH.CANADA’ 1814 + 1815 +[calc identifier INDICATOR := ”POPGROWTH”, identifier COUNTRY := ”CANADA”]; … … … 1816 + 1817 +DF2(1.0) <- UNION (DF2bis_GDPPERCAPITA_USA’, 1818 + 1819 +DF2bis_GDPPERCAPITA_CANADA’, 1820 + 1821 +… , 1822 + 1823 +DF2bis_POPGROWTH_USA’, 1824 + 1825 +DF2bis_POPGROWTH_CANADA’ 1826 + 1827 +…); 1828 + 1829 +In other words, starting from the datasets explicitly calculated through VTL (in the example ‘DF2(1.0)/GDPPERCAPITA.USA’ and so on), the first step consists in calculating other (non-persistent) VTL datasets (in the example DF2bis_GDPPERCAPITA_USA and so on) by adding the identifiers INDICATOR and COUNTRY with the desired values (//INDICATORvalue// and //COUNTRYvalue)//. Finally, all these non-persistent data sets are united and give the final result DF2(1.0)[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[38~]^^>>path:#_ftn38]](%%), which can be mapped one-to-one to the homonymous SDMX dataflow having the dimension components TIME_PERIOD, INDICATOR and COUNTRY. 1830 + 1831 +Therefore, mapping different VTL datasets having the same data structure to different parts of a SDMX dataflow, i.e. in the direction from VTL to SDMX, through the ordered concatenation notation is equivalent to a proper use of the operators “calc” and “union” on such datasets. [[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[39~]^^>>path:#_ftn39]](%%)[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[40~]^^>>path:#_ftn40]] 1832 + 1589 1589 It is worth noting that in the direction from VTL to SDMX it is mandatory to specify the value for every Dimension on which the mapping is based (in other word, in the name of the calculated VTL dataset is not possible to omit the value of some of the Dimensions). 1590 1590 1591 1591 === 10.3.7 Mapping variables and value domains between VTL and SDMX === ... ... @@ -1592,41 +1592,58 @@ 1592 1592 1593 1593 With reference to the VTL “model for Variables and Value domains”, the following additional mappings have to be considered: 1594 1594 1595 -(% style="width:890.835px" %) 1596 -|(% style="width:314px" %)VTL|(% style="width:574px" %)SDMX 1597 -|(% style="width:314px" %)**Data Set Component**|(% style="width:574px" %)Although this abstraction exists in SDMX, it does not have an explicit definition and correspond to a Component (either a Dimension or a PrimaryMeasure or a DataAttribute) belonging to one specific Dataflow^^42^^ 1598 -|(% style="width:314px" %)**Represented Variable**|(% style="width:574px" %)**Concept** with a definite Representation 1599 -|(% style="width:314px" %)**Value Domain**|(% style="width:574px" %)**Representation** (see the Structure Pattern in the Base Package) 1600 -|(% style="width:314px" %)**Enumerated Value Domain / Code List**|(% style="width:574px" %)((( 1601 -**Codelist** (for enumerated Dimension, PrimaryMeasure, DataAttribute) or **ConceptScheme **(for MeasureDimension) 1839 +|VTL|SDMX 1840 +|**Data Set Component**|Although this abstraction exists in SDMX, it does not have an explicit definition and correspond to a Component (either a Dimension or a PrimaryMeasure or a DataAttribute) belonging to one specific Dataflow^^42^^ 1841 +|**Represented Variable**|**Concept** with a definite Representation 1842 +|**Value Domain**|**Representation** (see the Structure Pattern in the Base Package) 1843 +|**Enumerated Value Domain / Code List**|((( 1844 +**Codelist** (for enumerated 1845 + 1846 +Dimension, PrimaryMeasure, 1847 + 1848 +DataAttribute) or **ConceptScheme** 1849 + 1850 +(for MeasureDimension) 1602 1602 ))) 1603 -|(% style="width:314px" %)**Code**|(% style="width:574px" %)**Code** (for enumerated Dimension, PrimaryMeasure, DataAttribute) or **Concept** (for MeasureDimension) 1604 -|(% style="width:314px" %)**Described Value Domain**|(% style="width:574px" %)((( 1605 -non-enumerated** Representation **(having Facets / ExtendedFacets, see the Structure Pattern in the Base Package) 1852 +|**Code**|**Code** (for enumerated Dimension, PrimaryMeasure, DataAttribute) or **Concept** (for MeasureDimension) 1853 +|**Described Value Domain**|((( 1854 +non-enumerated** Representation** 1855 + 1856 +(having Facets / ExtendedFacets, see the Structure Pattern in the Base Package) 1606 1606 ))) 1607 -|(% style="width:314px" %)**Value**|(% style="width:574px" %)((( 1608 -Although this abstraction exists in SDMX, it does not have an explicit definition and correspond to a **Code** of a Codelist (for enumerated Representations) or to a valid **value **(for non-enumerated** **Representations) or to a **Concept **(for MeasureDimension) 1858 +|**Value**|((( 1859 +Although this abstraction exists in SDMX, it does not have an explicit definition and correspond to a **Code** of a 1860 + 1861 +Codelist (for enumerated 1862 + 1863 +Representations) or to a valid **value **(for non-enumerated** ** 1864 + 1865 +Representations) or to a **Concept** 1866 + 1867 +(for MeasureDimension) 1609 1609 ))) 1610 -| (% style="width:314px" %)**Value Domain Subset / Set**|(% style="width:574px" %)This abstraction does not exist in SDMX1611 -| (% style="width:314px" %)**Enumerated Value Domain Subset / Enumerated Set**|(% style="width:574px" %)This abstraction does not exist in SDMX1612 -| (% style="width:314px" %)**Described Value Domain Subset / Described Set**|(% style="width:574px" %)This abstraction does not exist in SDMX1613 -| (% style="width:314px" %)**Set list**|(% style="width:574px" %)This abstraction does not exist in SDMX1869 +|**Value Domain Subset / Set**|This abstraction does not exist in SDMX 1870 +|**Enumerated Value Domain Subset / Enumerated Set**|This abstraction does not exist in SDMX 1871 +|**Described Value Domain Subset / Described Set**|This abstraction does not exist in SDMX 1872 +|**Set list**|This abstraction does not exist in SDMX 1614 1614 1615 1615 The main difference between VTL and SDMX relies on the fact that the VTL artefacts for defining subsets of Value Domains do not exist in SDMX, therefore the VTL features for referring to predefined subsets are not available in SDMX. These artefacts are the Value Domain Subset (or Set), either enumerated or described, the Set List (list of values belonging to enumerated subsets) and the Data Set Component (aimed at defining the set of values that the Component of a Data Set can take, possibly a subset of the codes of Value Domain). 1616 1616 1617 -Another difference consists in the fact that all Value Domains are considered as identifiable objects in VTL either if enumerated or not, while in SDMX the Codelist (corresponding to a VTL enumerated Value Domain) is identifiable, while the SDMX non-enumerated Representation (corresponding to a VTL non-enumerated Value Domain) is not identifiable. As a consequence, the definition of the VTL rulesets, which in VTL can refer either to enumerated or non-enumerated value domains, in SDMX can refer only to enumerated Value Domains (i.e. to SDMX Codelists).1876 +Another difference consists in the fact that all Value Domains are considered as identifiable objects in VTL either if enumerated or not, while in SDMX the Codelist (corresponding to a VTL enumerated Value Domain) is identifiable, while the SDMX non-enumerated Representation (corresponding to a VTL non-enumerated Value 1618 1618 1619 - As for themappingbetween VTL variablesand SDMX Concepts,it shouldbenoted that theseartefactsdo notcoincideperfectly. Infact, theVTL variables are representedvariables, defined always on the same Value Domain (“Representation”in SDMX) independentlyof thedataset/ datastructureinwhichtheyappear[[(%class="wikiinternallinkwikiinternallink wikiinternallink wikiinternallinkwikiinternallink wikiinternallinkwikiinternallinkwikiinternallink wikiinternallink wikiinternallinkwikiinternallinkwikiinternallink wikiinternallink wikiinternallink wikiinternallinkwikiinternallink wikiinternallinkwikiinternallinkwikiinternallink"%)^^~[41~]^^>>path:#_ftn41]](%%), while theSDMXConcepts canhavedifferentRepresentations in different DataStructures.[[(% class="wikiinternallinkwikiinternallinkwikiinternallink wikiinternallink wikiinternallinkwikiinternallink wikiinternallinkwikiinternallinkwikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[42~]^^>>path:#_ftn42]](%%) This meansthatoneSDMX Concept can correspondto many VTL Variables, one for each representation the Concept has.1878 +Domain) is not identifiable. As a consequence, the definition of the VTL rulesets, which in VTL can refer either to enumerated or non-enumerated value domains, in SDMX can refer only to enumerated Value Domains (i.e. to SDMX Codelists). 1620 1620 1621 - Therefore,it isimportant to beaware that someVTL operations(forexample thebinaryoperationsat datasetlevel)areconsistentonlyifthecomponentshavingthesamenames in theoperatedVTL datasetshavealsothe same representation(i.e.thesameValueDomainasforVTL). For example,it ispossible to obtain correct resultsfromtheVTLexpression1880 +As for the mapping between VTL variables and SDMX Concepts, it should be noted that these artefacts do not coincide perfectly. In fact, the VTL variables are represented variables, defined always on the same Value Domain (“Representation” in SDMX) independently of the data set / data structure in which they appear[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[41~]^^>>path:#_ftn41]](%%), while the SDMX Concepts can have different Representations in different DataStructures.[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[42~]^^>>path:#_ftn42]](%%) This means that one SDMX Concept can correspond to many VTL Variables, one for each representation the Concept has. 1622 1622 1623 - DS_c := DS_a+DS_b(whereDS_a,DS_b,DS_care VTLDataSets)1882 +Therefore, it is important to be aware that some VTL operations (for example the binary operations at data set level) are consistent only if the components having the same names in the operated VTL data sets have also the same representation (i.e. the same Value Domain as for VTL). For example, it is possible to obtain correct results from the VTL expression 1624 1624 1625 - ifthematchingcomponentsinDS_aandDS_b(e.g.ref_date,geo_area,sector…)refertothesamegeneralrepresentation.Insimplerwords,DS_aandDS_bmustusethesamevalues/codes(forref_date,geo_area,sector… ), otherwisetherelevantvalueswould not match and theresultof the operation would be wrong.1884 + DS_c := DS_a + DS_b (where DS_a, DS_b, DS_c are VTL Data Sets) 1626 1626 1886 +if the matching components in DS_a and DS_b (e.g. ref_date, geo_area, sector …) refer to the same general representation. In simpler words, DS_a and DS_b must use the same values/codes (for ref_date, geo_area, sector … ), otherwise the relevant values would not match and the result of the operation would be wrong. 1887 + 1627 1627 As mentioned, the property above is not enforced by construction in SDMX, and different representations of the same Concept can be not compatible one another (for example, it may happen that geo_area is represented by ISO-alpha-3 codes in DS_a and by ISO alpha-2 codes in DS_b). Therefore, it will be up to the definer of VTL transformations to ensure that the VTL expressions are consistent with the actual representations of the correspondent SDMX Concepts. 1628 1628 1629 -It remains up to the SDMX-VTL definer also the assurance of the consistency between a VTL Ruleset defined on Variables and the SDMX Components on which the Ruleset is applied. In fact, a VTL Ruleset is expressed by means of the values of the Variables (i.e. SDMX Concepts), i.e. assuming definite representations for them (e.g. ISO-alpha-3 for country). If the Ruleset is applied to SDMX Components that have the same name of the Concept they refer to but different representations (e.g. ISO-alpha-2 for country), the Ruleset cannot work properly. 1890 +It remains up to the SDMX-VTL definer also the assurance of the consistency between a VTL Ruleset defined on Variables and the SDMX Components on which the Ruleset is applied. In fact, a VTL Ruleset is expressed by means of the values of the Variables (i.e. SDMX Concepts), i.e. assuming definite representations for them (e.g. ISO-alpha-3 for country). If the Ruleset is applied to SDMX Components that have the same name of the Concept they refer to but different representations (e.g. ISO-alpha-2 for country), the Ruleset cannot work properly. 1630 1630 1631 1631 == 10.4 Mapping between SDMX and VTL Data Types == 1632 1632 ... ... @@ -1644,7 +1644,6 @@ 1644 1644 1645 1645 The VTL basic scalar types are listed below and follow a hierarchical structure in terms of supersets/subsets (e.g. “scalar” is the superset of all the basic scalar types): 1646 1646 1647 -[[image:1747859722732-549.png||height="283" width="224"]] 1648 1648 1649 1649 **Figure 13 – VTL Basic Scalar Types** 1650 1650 ... ... @@ -1670,162 +1670,208 @@ 1670 1670 1671 1671 The following table describes the default mapping for converting from the SDMX data types to the VTL basic scalar types. 1672 1672 1673 - (%style="width:653.835px" %)1674 -|( % style="width:366px" %)**SDMX data type(BasicComponentDataType)**|(% style="width:284px" %)**Default VTL basic scalar type**1675 - |(% style="width:366px"%)(((1676 - **String**1933 +|**SDMX data type (BasicComponentDataType)**|**Default VTL basic scalar type** 1934 +|((( 1935 +**String ** 1936 + 1677 1677 (string allowing any character) 1678 -)))|(% style="width:284px" %)**string** 1679 -|(% style="width:366px" %)((( 1680 -**Alpha** 1938 +)))|**string** 1939 +|((( 1940 +**Alpha ** 1941 + 1681 1681 (string which only allows A-z) 1682 -)))|(% style="width:284px" %)**string** 1683 -|(% style="width:366px" %)((( 1684 -**AlphaNumeric** 1943 +)))|**string** 1944 +|((( 1945 +**AlphaNumeric ** 1946 + 1685 1685 (string which only allows A-z and 0-9) 1686 -)))|(% style="width:284px" %)**string** 1687 -|(% style="width:366px" %)((( 1688 -**Numeric** 1948 +)))|**string** 1949 +|((( 1950 +**Numeric ** 1951 + 1689 1689 (string which only allows 0-9, but is not numeric so that is can having leading zeros) 1690 -)))|(% style="width:284px" %)**string** 1691 -|(% style="width:366px" %)((( 1692 -**BigInteger** 1953 +)))|**string** 1954 +|((( 1955 +**BigInteger ** 1956 + 1693 1693 (corresponds to XML Schema xs:integer datatype; infinite set of integer values) 1694 -)))|(% style="width:284px" %)**integer** 1695 -|(% style="width:366px" %)((( 1696 -**Integer** 1697 -(corresponds to XML Schema xs:int datatype; between -2147483648 and +2147483647 (inclusive)) 1698 -)))|(% style="width:284px" %)**integer** 1699 -|(% style="width:366px" %)((( 1700 -**Long** 1701 -(corresponds to XML Schema xs:long datatype; between -9223372036854775808 and +9223372036854775807 (inclusive)) 1702 -)))|(% style="width:284px" %)**integer** 1703 -|(% style="width:366px" %)((( 1704 -**Short** 1958 +)))|**integer** 1959 +|((( 1960 +**Integer ** 1961 + 1962 +(corresponds to XML Schema xs:int datatype; between 1963 + 1964 +-2147483648 and +2147483647 (inclusive)) 1965 +)))|**integer** 1966 +|((( 1967 +**Long ** 1968 + 1969 +(corresponds to XML Schema xs:long datatype; 1970 + 1971 +between -9223372036854775808 and +9223372036854775807 (inclusive)) 1972 +)))|**integer** 1973 +|((( 1974 +**Short ** 1975 + 1705 1705 (corresponds to XML Schema xs:short datatype; between -32768 and -32767 (inclusive)) 1706 -)))| (% style="width:284px" %)**integer**1707 -|( % style="width:366px" %)(((1977 +)))|**integer** 1978 +|((( 1708 1708 **Decimal** 1980 + 1709 1709 (corresponds to XML Schema xs:decimal datatype; subset of real numbers that can be represented as decimals) 1710 -)))|(% style="width:284px" %)**number** 1711 -|(% style="width:366px" %)((( 1712 -**Float** 1982 +)))|**number** 1983 +|((( 1984 +**Float ** 1985 + 1713 1713 (corresponds to XML Schema xs:float datatype; patterned after the IEEE single-precision 32-bit floating point type) 1714 -)))|(% style="width:284px" %)**number** 1715 -|(% style="width:366px" %)((( 1716 -**Double** 1987 +)))|**number** 1988 +|((( 1989 +**Double ** 1990 + 1717 1717 (corresponds to XML Schema xs:double datatype; patterned after the IEEE double-precision 64-bit floating point type) 1718 -)))|(% style="width:284px" %)**number** 1719 -|(% style="width:366px" %)((( 1720 -**Boolean** 1721 -(corresponds to the XML Schema xs:boolean datatype; support the mathematical concept of binary-valued logic: {true, false}) 1722 -)))|(% style="width:284px" %)**boolean** 1723 -|(% style="width:366px" %)((( 1724 -**URI** 1992 +)))|**number** 1993 +|((( 1994 +**Boolean ** 1995 + 1996 +(corresponds to the XML Schema xs:boolean datatype; support the mathematical concept of binary-valued logic: {true, false}) 1997 +)))|**boolean** 1998 +|((( 1999 +**URI ** 2000 + 1725 1725 (corresponds to the XML Schema xs:anyURI; absolute or relative Uniform Resource Identifier Reference) 1726 -)))|(% style="width:284px" %)**string** 1727 -|(% style="width:366px" %)((( 1728 -**Count** 2002 +)))|**string** 2003 +|((( 2004 +**Count ** 2005 + 1729 1729 (an integer following a sequential pattern, increasing by 1 for each occurrence) 1730 -)))|(% style="width:284px" %)**integer** 1731 -|(% style="width:366px" %)((( 1732 -**InclusiveValueRange** 2007 +)))|**integer** 2008 +|((( 2009 +**InclusiveValueRange ** 2010 + 1733 1733 (decimal number within a closed interval, whose bounds are specified in the SDMX representation by the facets minValue and maxValue) 1734 -)))|(% style="width:284px" %)**number** 1735 -|(% style="width:366px" %)((( 1736 -**ExclusiveValueRange** 2012 +)))|**number** 2013 +|((( 2014 +**ExclusiveValueRange ** 2015 + 1737 1737 (decimal number within an open interval, whose bounds are specified in the SDMX representation by the facets minValue and maxValue) 1738 -)))|(% style="width:284px" %)**number** 1739 -|(% style="width:366px" %)((( 1740 -**Incremental ** 2017 +)))|**number** 2018 +|((( 2019 +**Incremental ** 2020 + 1741 1741 (decimal number the increased by a specific interval (defined by the interval facet), which is typically enforced outside of the XML validation) 1742 -)))|(% style="width:284px" %)**number** 1743 -|(% style="width:366px" %)((( 1744 -**ObservationalTimePeriod** 2022 +)))|**number** 2023 +|((( 2024 +**ObservationalTimePeriod ** 2025 + 1745 1745 (superset of StandardTimePeriod and TimeRange) 1746 -)))|(% style="width:284px" %)**time** 1747 -|(% style="width:366px" %)((( 1748 -**StandardTimePeriod** 2027 +)))|**time** 2028 +|((( 2029 +**StandardTimePeriod ** 2030 + 1749 1749 (superset of BasicTimePeriod and ReportingTimePeriod) 1750 -)))|(% style="width:284px" %)**time** 1751 -|(% style="width:366px" %)((( 1752 -**BasicTimePeriod** 2032 +)))|**time** 2033 +|((( 2034 +**BasicTimePeriod ** 2035 + 1753 1753 (superset of GregorianTimePeriod and DateTime) 1754 -)))|(% style="width:284px" %)**date** 1755 -|(% style="width:366px" %)((( 1756 -**GregorianTimePeriod** 2037 +)))|**date** 2038 +|((( 2039 +**GregorianTimePeriod ** 2040 + 1757 1757 (superset of GregorianYear, GregorianYearMonth, and GregorianDay) 1758 -)))| (% style="width:284px" %)**date**1759 -| (% style="width:366px" %)**GregorianYear **(YYYY)|(%style="width:284px" %)**date**1760 -| (% style="width:366px" %)**GregorianYearMonth** / **GregorianMonth** (YYYY-MM)|(% style="width:284px" %)**date**1761 -| (% style="width:366px" %)**GregorianDay **(YYYY-MM-DD)|(% style="width:284px" %)**date**1762 -|( % style="width:366px" %)(((2042 +)))|**date** 2043 +|**GregorianYear **(YYYY) |**date** 2044 +|**GregorianYearMonth** / **GregorianMonth** (YYYY-MM)|**date** 2045 +|**GregorianDay **(YYYY-MM-DD)|**date** 2046 +|((( 1763 1763 **ReportingTimePeriod ** 1764 -(superset of RepostingYear, ReportingSemester, ReportingTrimester, ReportingQuarter, ReportingMonth, ReportingWeek, ReportingDay) 1765 -)))|(% style="width:284px" %)**time_period** 1766 -|(% style="width:366px" %)((( 1767 -**ReportingYear** 2048 + 2049 +(superset of RepostingYear, ReportingSemester, 2050 + 2051 +ReportingTrimester, ReportingQuarter, ReportingMonth, 2052 + 2053 +ReportingWeek, ReportingDay) 2054 +)))|**time_period** 2055 +|((( 2056 +**ReportingYear ** 2057 + 1768 1768 (YYYY-A1 – 1 year period) 1769 -)))|(% style="width:284px" %)**time_period** 1770 -|(% style="width:366px" %)((( 1771 -**ReportingSemester** 2059 +)))|**time_period** 2060 +|((( 2061 +**ReportingSemester ** 2062 + 1772 1772 (YYYY-Ss – 6 month period) 1773 -)))|(% style="width:284px" %)**time_period** 1774 -|(% style="width:366px" %)((( 1775 -**ReportingTrimester** 2064 +)))|**time_period** 2065 +|((( 2066 +**ReportingTrimester ** 2067 + 1776 1776 (YYYY-Tt – 4 month period) 1777 -)))|(% style="width:284px" %)**time_period** 1778 -|(% style="width:366px" %)((( 1779 -**ReportingQuarter** 2069 +)))|**time_period** 2070 +|((( 2071 +**ReportingQuarter ** 2072 + 1780 1780 (YYYY-Qq – 3 month period) 1781 -)))|(% style="width:284px" %)**time_period** 1782 -|(% style="width:366px" %)((( 1783 -**ReportingMonth** 2074 +)))|**time_period** 2075 +|((( 2076 +**ReportingMonth ** 2077 + 1784 1784 (YYYY-Mmm – 1 month period) 1785 -)))|(% style="width:284px" %)**time_period** 1786 -|(% style="width:366px" %)((( 1787 -**ReportingWeek** 2079 +)))|**time_period** 2080 +|((( 2081 +**ReportingWeek ** 2082 + 1788 1788 (YYYY-Www – 7 day period; following ISO 8601 definition of a week in a year) 1789 -)))|(% style="width:284px" %)**time_period** 1790 -|(% style="width:366px" %)((( 1791 -**ReportingDay** 2084 +)))|**time_period** 2085 +|((( 2086 +**ReportingDay ** 2087 + 1792 1792 (YYYY-Dddd – 1 day period) 1793 -)))|(% style="width:284px" %)**time_period** 1794 -|(% style="width:366px" %)((( 1795 -**DateTime** 2089 +)))|**time_period** 2090 +|((( 2091 +**DateTime ** 2092 + 1796 1796 (YYYY-MM-DDThh:mm:ss) 1797 -)))| (% style="width:284px" %)**date**1798 -|( % style="width:366px" %)(((1799 -**TimeRange** 2094 +)))|**date** 2095 +|((( 2096 +**TimeRange ** 1800 1800 1801 1801 (YYYY-MM-DD(Thh:mm:ss)?/<duration>) 1802 -)))|(% style="width:284px" %)**time** 1803 -|(% style="width:366px" %)((( 1804 -**Month** 1805 -(~-~-MM; speicifies a month independent of a year; e.g. February is black history month in the United States) 1806 -)))|(% style="width:284px" %)**string** 1807 -|(% style="width:366px" %)((( 1808 -**MonthDay** 1809 -(~-~-MM-DD; specifies a day within a month independent of a year; e.g. Christmas is December 25^^th^^; used to specify reporting year start day) 1810 -)))|(% style="width:284px" %)**string** 1811 -|(% style="width:366px" %)((( 1812 -**Day** 2099 +)))|**time** 2100 +|((( 2101 +**Month ** 2102 + 2103 +(~-~-MM; speicifies a month independent of a year; e.g. 2104 + 2105 +February is black history month in the United States) 2106 +)))|**string** 2107 +|((( 2108 +**MonthDay ** 2109 + 2110 +(~-~-MM-DD; specifies a day within a month independent of a year; e.g. Christmas is December 25^^th^^; used to specify reporting year start day) 2111 +)))|**string** 2112 +|((( 2113 +**Day ** 2114 + 1813 1813 (~-~--DD; specifies a day independent of a month or year; e.g. the 15^^th^^ is payday) 1814 -)))|(% style="width:284px" %)**string** 1815 -|(% style="width:366px" %)((( 1816 -**Time** 2116 +)))|**string** 2117 +|((( 2118 +**Time ** 2119 + 1817 1817 (hh:mm:ss; time independent of a date; e.g. coffee break is at 10:00 AM) 1818 -)))|(% style="width:284px" %)**string** 1819 -|(% style="width:366px" %)((( 1820 -**Duration** 2121 +)))|**string** 2122 +|((( 2123 +**Duration ** 2124 + 1821 1821 (corresponds to XML Schema xs:duration datatype) 1822 -)))| (% style="width:284px" %)**duration**1823 -| (% style="width:366px" %)XHTML|(% style="width:284px" %)Metadata type – not applicable1824 -| (% style="width:366px" %)KeyValues|(% style="width:284px" %)Metadata type – not applicable1825 -| (% style="width:366px" %)IdentifiableReference|(% style="width:284px" %)Metadata type – not applicable1826 -| (% style="width:366px" %)DataSetReference|(% style="width:284px" %)Metadata type – not applicable1827 -| (% style="width:366px" %)AttachmentConstraintReference|(% style="width:284px" %)Metadata type – not applicable2126 +)))|**duration** 2127 +|XHTML|Metadata type – not applicable 2128 +|KeyValues|Metadata type – not applicable 2129 +|IdentifiableReference|Metadata type – not applicable 2130 +|DataSetReference|Metadata type – not applicable 2131 +|AttachmentConstraintReference|Metadata type – not applicable 1828 1828 2133 + 2134 + 1829 1829 **Figure 14 – Mappings from SDMX data types to VTL Basic Scalar Types** 1830 1830 1831 1831 When VTL takes in input SDMX artefacts, it is assumed that a type conversion according to the table above always happens. In case a different VTL basic scalar type is desired, it can be achieved in the VTL program taking in input the default VTL basic scalar type above and applying to it the VTL type conversion features (see the implicit and explicit type conversion and the “cast” operator in the VTL Reference Manual). ... ... @@ -1834,84 +1834,89 @@ 1834 1834 1835 1835 The following table describes the default conversion from the VTL basic scalar types to the SDMX data types . 1836 1836 1837 - (%style="width:923.835px"%)1838 -| (% style="width:191px" %)**VTL basic scalartype**|(% style="width:419px"%)**DefaultSDMXdata type(BasicComponentDataType)**|(%style="width:311px" %)**Default output format**1839 -| (% style="width:191px" %)**String**|(% style="width:419px" %)**String**|(% style="width:311px" %)Like XML (xs:string)1840 -| (% style="width:191px" %)**Number**|(% style="width:419px" %)**Float **|(% style="width:311px" %)Like XML (xs:float)1841 -| (% style="width:191px" %)**Integer**|(% style="width:419px" %)**Integer**|(% style="width:311px" %)Like XML (xs:int)1842 -| (% style="width:191px" %)**Date**|(% style="width:419px" %)**DateTime**|(%style="width:311px"%)YYYY-MM-DDT00:00:00Z1843 -| (% style="width:191px" %)**Time**|(% style="width:419px" %)**StandardTimePeriod**|(% style="width:311px" %)<date>/<date>(as defined above)1844 - |(% style="width:191px" %)**time_period**|(% style="width:419px" %)(((1845 - **ReportingTimePeriod1846 -(StandardReportingPeriod)** 1847 -)))|( % style="width:311px" %)(((2143 +|**VTL basic scalar type**|**Default SDMX data type (BasicComponentDataType)**|**Default output format** 2144 +|**String**|**String **|Like XML (xs:string) 2145 +|**Number**|**Float **|Like XML (xs:float) 2146 +|**Integer**|**Integer **|Like XML (xs:int) 2147 +|**Date**|**DateTime**|YYYY-MM-DDT00:00:00Z 2148 +|**Time**|**StandardTimePeriod**|<date>/<date> (as defined above) 2149 +|**time_period**|((( 2150 +**ReportingTimePeriod** 2151 + 2152 +**(StandardReportingPeriod)** 2153 +)))|((( 1848 1848 YYYY-Pppp 2155 + 1849 1849 (according to SDMX ) 1850 1850 ))) 1851 -| (% style="width:191px" %)**Duration**|(% style="width:419px" %)**Duration **|(% style="width:311px" %)(((2158 +|**Duration**|**Duration **|((( 1852 1852 Like XML (xs:duration) 2160 + 1853 1853 PnYnMnDTnHnMnS 1854 1854 ))) 1855 -|(% style="width:191px" %)**Boolean**|(% style="width:419px" %)**Boolean **|(% style="width:311px" %)((( 1856 -Like XML (xs:boolean) with the values “true” or “false” 2163 +|**Boolean**|**Boolean **|((( 2164 +Like XML (xs:boolean) with the values 2165 + 2166 +“true” or “false” 1857 1857 ))) 1858 1858 1859 1859 **Figure 14 – Mappings from SDMX data types to VTL Basic Scalar Types** 1860 1860 1861 -In case a different default conversion is desired, it can be achieved through the CustomTypeScheme and CustomType artefacts (see also the section Transformations and Expressions of the SDMX information model).2171 +In case a different default conversion is desired, it can be achieved through the 1862 1862 2173 +CustomTypeScheme and CustomType artefacts (see also the section Transformations and Expressions of the SDMX information model). 2174 + 1863 1863 The custom output formats can be specified by means of the VTL formatting mask described in the section “Type Conversion and Formatting Mask” of the VTL Reference Manual. Such a section describes the masks for the VTL basic scalar types “number”, “integer”, “date”, “time”, “time_period” and “duration” and gives examples. As for the types “string” and “boolean” the VTL conventions are extended with some other special characters as described in the following table. 1864 1864 1865 -(% style="width:671.835px" %) 1866 -|(% colspan="2" style="width:669px" %)**VTL special characters for the formatting masks** 1867 -|(% colspan="2" style="width:669px" %)** ** 1868 -|(% colspan="2" style="width:669px" %)**Number ** 1869 -|(% style="width:141px" %)D|(% style="width:528px" %)one numeric digit (if the scientific notation is adopted, D is only for the mantissa) 1870 -|(% style="width:141px" %)E|(% style="width:528px" %)one numeric digit (for the exponent of the scientific notation) 1871 -|(% style="width:141px" %).(dot)|(% style="width:528px" %)possible separator between the integer and the decimal parts. 1872 -|(% style="width:141px" %),(comma)|(% style="width:528px" %)possible separator between the integer and the decimal parts. 1873 -|(% style="width:141px" %) |(% style="width:528px" %) 1874 -|(% colspan="2" style="width:669px" %)**Time and duration** 1875 -|(% style="width:141px" %)C |(% style="width:528px" %)century 1876 -|(% style="width:141px" %)Y|(% style="width:528px" %)year 1877 -|(% style="width:141px" %)S|(% style="width:528px" %)semester 1878 -|(% style="width:141px" %)Q|(% style="width:528px" %)quarter 1879 -|(% style="width:141px" %)M|(% style="width:528px" %)month 1880 -|(% style="width:141px" %)W|(% style="width:528px" %)week 1881 -|(% style="width:141px" %)D|(% style="width:528px" %)day 1882 -|(% style="width:141px" %)h |(% style="width:528px" %)hour digit (by default on 24 hours) 1883 -|(% style="width:141px" %)M|(% style="width:528px" %)minute 1884 -|(% style="width:141px" %)S|(% style="width:528px" %)second 1885 -|(% style="width:141px" %)D|(% style="width:528px" %)decimal of second 1886 -|(% style="width:141px" %)P|(% style="width:528px" %)period indicator (representation in one digit for the duration) 1887 -|(% style="width:141px" %)P|(% style="width:528px" %)number of the periods specified in the period indicator 1888 -|(% style="width:141px" %)AM/PM |(% style="width:528px" %)indicator of AM / PM (e.g. am/pm for “am” or “pm”) 1889 -|(% style="width:141px" %)MONTH|(% style="width:528px" %)uppercase textual representation of the month (e.g., JANUARY for January) 1890 -|(% style="width:141px" %)DAY|(% style="width:528px" %)uppercase textual representation of the day (e.g., MONDAY for Monday) 1891 -|(% style="width:141px" %)Month|(% style="width:528px" %)lowercase textual representation of the month (e.g., january) 1892 -|(% style="width:141px" %)Day|(% style="width:528px" %)lowercase textual representation of the month (e.g., monday) 1893 -|(% style="width:141px" %)Month|(% style="width:528px" %)First character uppercase, then lowercase textual representation of the month (e.g., January) 1894 -|(% style="width:141px" %)Day|(% style="width:528px" %)First character uppercase, then lowercase textual representation of the day using (e.g. Monday) 1895 -|(% style="width:141px" %) |(% style="width:528px" %) 1896 -|(% colspan="2" style="width:669px" %)**String** 1897 -|(% style="width:141px" %)X|(% style="width:528px" %)any string character 1898 -|(% style="width:141px" %)Z|(% style="width:528px" %)any string character from “A” to “z” 1899 -|(% style="width:141px" %)9|(% style="width:528px" %)any string character from “0” to “9” 1900 -|(% style="width:141px" %) |(% style="width:528px" %) 1901 -|(% colspan="2" style="width:669px" %)**Boolean ** 1902 -|(% style="width:141px" %)B|(% style="width:528px" %)Boolean using “true” for True and “false” for False 1903 -|(% style="width:141px" %)1|(% style="width:528px" %)Boolean using “1” for True and “0” for False 1904 -|(% style="width:141px" %)0|(% style="width:528px" %)Boolean using “0” for True and “1” for False 1905 -|(% style="width:141px" %) |(% style="width:528px" %) 1906 -|(% colspan="2" style="width:669px" %)Other qualifiers 1907 -|(% style="width:141px" %)*|(% style="width:528px" %)an arbitrary number of digits (of the preceding type) 1908 -|(% style="width:141px" %)+|(% style="width:528px" %)at least one digit (of the preceding type) 1909 -|(% style="width:141px" %)( )|(% style="width:528px" %)optional digits (specified within the brackets) 1910 -|(% style="width:141px" %)\|(% style="width:528px" %)prefix for the special characters that must appear in the mask 1911 -|(% style="width:141px" %)N|(% style="width:528px" %)fixed number of digits used in the preceding textual representation of the month or the day 1912 -|(% style="width:141px" %) |(% style="width:528px" %) 2177 +|(% colspan="2" %)**VTL special characters for the formatting masks** 2178 +|(% colspan="2" %)** ** 2179 +|(% colspan="2" %)**Number ** 2180 +|D|one numeric digit (if the scientific notation is adopted, D is only for the mantissa) 2181 +|E|one numeric digit (for the exponent of the scientific notation) 2182 +|. (dot)|possible separator between the integer and the decimal parts. 2183 +|, (comma)|possible separator between the integer and the decimal parts. 2184 +| | 2185 +|(% colspan="2" %)**Time and duration** 2186 +|C |century 2187 +|Y|year 2188 +|S|semester 2189 +|Q|quarter 2190 +|M|month 2191 +|W|week 2192 +|D|day 2193 +|h |hour digit (by default on 24 hours) 2194 +|M|minute 2195 +|S|second 2196 +|D|decimal of second 2197 +|P|period indicator (representation in one digit for the duration) 2198 +|P|number of the periods specified in the period indicator 2199 +|AM/PM |indicator of AM / PM (e.g. am/pm for “am” or “pm”) 2200 +|MONTH|uppercase textual representation of the month (e.g., JANUARY for January) 2201 +|DAY|uppercase textual representation of the day (e.g., MONDAY for Monday) 2202 +|Month|lowercase textual representation of the month (e.g., january) 2203 +|Day|lowercase textual representation of the month (e.g., monday) 2204 +|Month|First character uppercase, then lowercase textual representation of the month (e.g., January) 2205 +|Day|First character uppercase, then lowercase textual representation of the day using (e.g. Monday) 2206 +| | 2207 +|(% colspan="2" %)**String ** 2208 +|X|any string character 2209 +|Z|any string character from “A” to “z” 2210 +|9|any string character from “0” to “9” 2211 +| | 2212 +|(% colspan="2" %)**Boolean ** 2213 +|B|Boolean using “true” for True and “false” for False 2214 +|1|Boolean using “1” for True and “0” for False 2215 +|0|Boolean using “0” for True and “1” for False 2216 +| | 2217 +|(% colspan="2" %)Other qualifiers 2218 +|*|an arbitrary number of digits (of the preceding type) 2219 +|+|at least one digit (of the preceding type) 2220 +|( )|optional digits (specified within the brackets) 2221 +|\|prefix for the special characters that must appear in the mask 2222 +|N|fixed number of digits used in the preceding textual representation of the month or the day 2223 +| | 1913 1913 1914 -The default conversion, either standard or customized, can be used to deduce automatically the representation of the components of the result of a VTL transformation. In alternative, the representation of the resulting SDMX Dataflow can be given explicitly by providing its DataStructureDefinition. In other words, the representation specified in the DSD, if available, overrides any default conversion[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[43~]^^>>path:#_ftn43]](%%).2225 +The default conversion, either standard or customized, can be used to deduce automatically the representation of the components of the result of a VTL transformation. In alternative, the representation of the resulting SDMX Dataflow can be given explicitly by providing its DataStructureDefinition. In other words, the representation specified in the DSD, if available, overrides any default conversion[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[43~]^^>>path:#_ftn43]](%%). 1915 1915 1916 1916 === 10.4.5 Null Values === 1917 1917 ... ... @@ -1919,20 +1919,22 @@ 1919 1919 1920 1920 On the other side, the VTL programs can produce in output NULL values for Measures and Attributes (Null values are not allowed in the Identifiers). In the conversion from VTL to SDMX, it is assumed that a NULL in VTL becomes a missing value in SDMX. 1921 1921 1922 -In the conversion from VTL to SDMX, the default assumption can be overridden, separately for each VTL basic scalar type, by specifying which the value that represents the NULL in SDMX is. This can be specified in the attribute “nullValue” of the CustomType artefact (see also the section Transformations and Expressions of the SDMX information model). A CustomType belongs to a CustomTypeScheme, which can be referenced by one or more TransformationScheme (i.e. VTL programs). The overriding assumption is applied for all the SDMX Dataflows calculated in the TransformationScheme. 2233 +In the conversion from VTL to SDMX, the default assumption can be overridden, separately for each VTL basic scalar type, by specifying which the value that represents the NULL in SDMX is. This can be specified in the attribute “nullValue” of the CustomType artefact (see also the section Transformations and Expressions of the SDMX information model). A CustomType belongs to a CustomTypeScheme, which can be referenced by one or more TransformationScheme (i.e. VTL programs). The overriding assumption is applied for all the SDMX Dataflows calculated in the TransformationScheme. 1923 1923 1924 1924 === 10.4.6 Format of the literals used in VTL transformations === 1925 1925 1926 1926 The VTL programs can contain literals, i.e. specific values of certain data types written directly in the VTL definitions or expressions. The VTL does not prescribe a specific format for the literals and leave the specific VTL systems and the definers of VTL transformations free of using their preferred formats. 1927 1927 1928 -Given this discretion, it is essential to know which are the external representations adopted for the literals in a VTL program, in order to interpret them correctly. For example, if the external format for the dates is YYYY-MM-DD the date literal 201001-02 has the meaning of 2^^nd^^ January 2010, instead if the external format for the dates is YYYY-DD-MM the same literal has the meaning of 1^^st^^ February 2010. 2239 +Given this discretion, it is essential to know which are the external representations adopted for the literals in a VTL program, in order to interpret them correctly. For example, if the external format for the dates is YYYY-MM-DD the date literal 201001-02 has the meaning of 2^^nd^^ January 2010, instead if the external format for the dates is YYYY-DD-MM the same literal has the meaning of 1^^st^^ February 2010. 1929 1929 1930 1930 Hereinafter, i.e. in the SDMX implementation of the VTL, it is assumed that the literals are expressed according to the “default output format” of the table of the previous paragraph (“Mapping VTL basic scalar types to SDMX data types”) unless otherwise specified. 1931 1931 1932 1932 A different format can be specified in the attribute “vtlLiteralFormat” of the CustomType artefact (see also the section Transformations and Expressions of the SDMX information model). 1933 1933 1934 -Like in the case of the conversion of NULLs described in the previous paragraph, the overriding assumption is applied, for a certain VTL basic scalar type, if a value is found for the vtlLiteralFormat attribute of the CustomType of such VTL basic scalar type. The overriding assumption is applied for all the literals of a related VTL TransformationScheme.2245 +Like in the case of the conversion of NULLs described in the previous paragraph, the overriding assumption is applied, for a certain VTL basic scalar type, if a value is found for the vtlLiteralFormat attribute of the CustomType of such VTL basic scalar type. The overriding assumption is applied for all the literals of a related VTL 1935 1935 2247 +TransformationScheme. 2248 + 1936 1936 In case a literal is operand of a VTL Cast operation, the format specified in the Cast overrides all the possible otherwise specified formats. 1937 1937 1938 1938 = 11 Annex I: How to eliminate extra element in the .NET SDMX Web Service = ... ... @@ -1941,18 +1941,12 @@ 1941 1941 1942 1942 For implementing an SDMX compliant Web Service the standardised WSDL file should be used that describes the expected request/response structure. The request message of the operation contains a wrapper element (e.g. “GetGenericData”) that wraps a tag called “GenericDataQuery”, which is the actual SDMX query XML message that contains the query to be processed by the Web Service. In the same way the response is formulated in a wrapper element “GetGenericDataResponse”. 1943 1943 1944 -As defined in the SOAP specification, the root element of a SOAP message is the Envelope, which contains an optional Header and a mandatory Body. These are illustrated below along with the Body contents according to the WSDL: 2257 +As defined in the SOAP specification, the root element of a SOAP message is the Envelope, which contains an optional Header and a mandatory Body. These are illustrated below along with the Body contents according to the WSDL: 1945 1945 1946 -[[image:1747854006117-843.png]] 1947 - 1948 1948 The problem that initiated the present analysis refers to the difference in the way SOAP requests are when trying to implement the aforementioned Web Service in .NET framework. 1949 1949 1950 1950 Building such a Web Service using the .NET framework is done by exposing a method (i.e. the getGenericData in the example) with an XML document argument (lets name it “Query”). **The difference that appears in Microsoft .Net implementations is that there is a need for an extra XML container around the SDMX GenericDataQuery.** This is the expected behavior since the framework is let to publish automatically the Web Service as a remote procedure call, thus wraps each parameter into an extra element. The .NET request is illustrated below: 1951 1951 1952 -[[image:1747854039499-443.png]] 1953 - 1954 -[[image:1747854067769-691.png]] 1955 - 1956 1956 Furthermore this extra element is also inserted in the automatically generated WSDL from the framework. Therefore this particularity requires custom clients for the .NET Web Services that is not an interoperable solution. 1957 1957 1958 1958 == 11.2 Solution == ... ... @@ -1973,30 +1973,20 @@ 1973 1973 1974 1974 To understand how the **XmlAnyElement** attribute works we present the following two web methods: 1975 1975 1976 - [[image:1747854096778-844.png]]2283 +In this method the **input** parameter is decorated with the **XmlAnyElement** parameter. This is a hint that this parameter will be de-serialized from an **xsd:any** element. Since the attribute is not passed any parameters, it means that the entire XML element for this parameter in the SOAP message will be in the Infoset that is represented by this **XmlElement** parameter. 1977 1977 1978 - In this methodthe **input** parameteris decoratedwith the**XmlAnyElement** parameter. This is a hint that this parameterwill bede-serialized from an**xsd:any** element. Since theattribute is notpassed any parameters,it means thatthe entire XML elementfor this parameterintheSOAPmessage will be inthe Infoset that is representedby this**XmlElement**parameter.2285 +The difference between the two is that for the first method, **SubmitXml**, the 1979 1979 1980 - [[image:1747854127303-270.png]]2287 +XmlSerializer will expect an element named **input** to be an immediate child of the **SubmitXml** element in the SOAP body. The second method, **SubmitXmlAny**, will not care what the name of the child of the **SubmitXmlAny** element is. It will plug whatever XML is included into the input parameter. The message style from ASP.NET Help for the two methods is shown below. First we look at the message for the method without the **XmlAnyElement** attribute. 1981 1981 1982 -The difference between the two is that for the first method, **SubmitXml**, the XmlSerializer will expect an element named **input** to be an immediate child of the **SubmitXml** element in the SOAP body. The second method, **SubmitXmlAny**, will not care what the name of the child of the **SubmitXmlAny** element is. It will plug whatever XML is included into the input parameter. The message style from ASP.NET Help for the two methods is shown below. First we look at the message for the method without the **XmlAnyElement** attribute. 1983 - 1984 -[[image:1747854163928-581.png]] 1985 - 1986 1986 Now we look at the message for the method that uses the **XmlAnyElement** attribute. 1987 1987 1988 -[[image:1747854190641-364.png]] 1989 - 1990 -[[image:1747854236732-512.png]] 1991 - 1992 1992 The method decorated with the **XmlAnyElement** attribute has one fewer wrapping elements. Only an element with the name of the method wraps what is passed to the **input** parameter. 1993 1993 1994 -For more information please consult: [[http:~~/~~/msdn.microsoft.com/en-us/library/aa480498.aspx>>http://msdn.microsoft.com/en-us/library/aa480498.aspx]] 2293 +For more information please consult: [[http:~~/~~/msdn.microsoft.com/en>>url:http://msdn.microsoft.com/en-us/library/aa480498.aspx]][[->>url:http://msdn.microsoft.com/en-us/library/aa480498.aspx]][[us/library/aa480498.aspx>>url:http://msdn.microsoft.com/en-us/library/aa480498.aspx]][[url:http://msdn.microsoft.com/en-us/library/aa480498.aspx]] 1995 1995 1996 1996 Furthermore at this point the problem with the different requests has been solved. However there is still the difference in the produced WSDL that has to be taken care. The automatic generated WSDL now doesn’t insert the extra element, but defines the content of the operation wrapper element as “xsd:any” type. 1997 1997 1998 -[[image:1747854286398-614.png]] 1999 - 2000 2000 Without a common WSDL still the solution doesn’t enforce interoperability. In order to 2001 2001 2002 2002 “fix” the WSDL, there two approaches. The first is to intervene in the generation process. This is a complicated approach, compared to the second approach, which overrides the generation process and returns the envisioned WSDL for the SDMX Web Service. ... ... @@ -2009,27 +2009,16 @@ 2009 2009 2010 2010 In the context of the SDMX Web Service, applying the above solution translates into the following: 2011 2011 2012 -[[image:1747854385465-132.png]] 2013 - 2014 2014 The SOAP request/response will then be as follows: 2015 2015 2016 2016 **GenericData Request** 2017 2017 2018 -[[image:1747854406014-782.png]] 2019 - 2020 2020 **GenericData Response** 2021 2021 2022 -[[image:1747854424488-855.png]] 2023 - 2024 2024 For overriding the automatically produced WSDL, in the solution explorer right click the project and select “Add” -> “New item…”. Then select the “Global Application Class”. This will create “.asax” class file in which the following code should replace the existing empty method: 2025 2025 2026 -[[image:1747854453895-524.png]] 2027 - 2028 -[[image:1747854476631-125.png]] 2029 - 2030 2030 The SDMX_WSDL.wsdl should reside in the in the root directory of the application. After applying this solution the returned WSDL is the envisioned. Thus in the request message definition contains: 2031 2031 2032 -[[image:1747854493363-776.png]] 2033 2033 2034 2034 ---- 2035 2035 ... ... @@ -2057,15 +2057,15 @@ 2057 2057 2058 2058 [[~[12~]>>path:#_ftnref12]] In case the invoked artefact is a VTL component, which can be invoked only within the invocation of a 2059 2059 2060 -VTL data set (SDMX dataflow), the specific SDMX class-name (e.g. Dimension, MeasureDimension, TimeDimension, PrimaryMeasure or DataAttribute) can be deduced from the data structure of the SDMX Dataflow which the component belongs to. 2346 +VTL data set (SDMX dataflow), the specific SDMX class-name (e.g. Dimension, MeasureDimension, TimeDimension, PrimaryMeasure or DataAttribute) can be deduced from the data structure of the SDMX Dataflow which the component belongs to. 2061 2061 2062 -[[~[13~]>>path:#_ftnref13]] If the Agency is composite (for example AgencyA.Dept1.Unit2), the agency is considered different even if only part of the composite name is different (for example AgencyA.Dept1.Unit3 is a different Agency than the previous one). Moreover the agency-id cannot be omitted in part (i.e., if a TransformationScheme owned by AgencyA.Dept1.Unit2 references an artefact coming from AgencyA.Dept1.Unit3, the specification of the agency-id becomes mandatory and must be complete, without omitting the possibly equal parts like AgencyA.Dept1) 2348 +[[~[13~]>>path:#_ftnref13]] If the Agency is composite (for example AgencyA.Dept1.Unit2), the agency is considered different even if only part of the composite name is different (for example AgencyA.Dept1.Unit3 is a different Agency than the previous one). Moreover the agency-id cannot be omitted in part (i.e., if a TransformationScheme owned by AgencyA.Dept1.Unit2 references an artefact coming from AgencyA.Dept1.Unit3, the specification of the agency-id becomes mandatory and must be complete, without omitting the possibly equal parts like AgencyA.Dept1) 2063 2063 2064 2064 [[~[14~]>>path:#_ftnref14]] Single quotes are needed because this reference is not a VTL regular name. 2065 2065 2066 2066 [[~[15~]>>path:#_ftnref15]] Single quotes are not needed in this case because CL_FREQ is a VTL regular name. 2067 2067 2068 -[[~[16~]>>path:#_ftnref16]] The result DFR(1.0) is be equal to DF1(1.0) save that the component SECTOR is called SEC 2354 +[[~[16~]>>path:#_ftnref16]] The result DFR(1.0) is be equal to DF1(1.0) save that the component SECTOR is called SEC 2069 2069 2070 2070 [[~[17~]>>path:#_ftnref17]] Rulesets of this kind cannot be reused when the referenced Concept has a different representation. 2071 2071 ... ... @@ -2081,7 +2081,7 @@ 2081 2081 2082 2082 [[~[23~]>>path:#_ftnref23]] The SDMX community is evaluating the opportunity of allowing more than one measure component in a DataStructureDefinition in the next SDMX major version. 2083 2083 2084 -[[~[24~]>>path:#_ftnref24]] If future SDMX major versions will allow multi-measures data structures, this method is expected to become applicable even if the VTL data structure has more than one measure 2370 +[[~[24~]>>path:#_ftnref24]] If future SDMX major versions will allow multi-measures data structures, this method is expected to become applicable even if the VTL data structure has more than one measure 2085 2085 2086 2086 [[~[25~]>>path:#_ftnref25]] The kind of mapping explained here works in combination with a SDMX specific naming convention that requires pre-processing before parsing the VTL expressions. As highlighted below, the identifiers of the VTL datasets are a shortcut of some specific VTL operators applied to the SDMX Dataflows. This is not safe to use outside an SDMX context, as the naming convention may have no meaning there. 2087 2087 ... ... @@ -2089,7 +2089,7 @@ 2089 2089 2090 2090 [[~[27~]>>path:#_ftnref27]] Please note that this kind of mapping is only an option at disposal of the definer of VTL Transformations; in fact it remains always possible to manipulate the needed parts of SDMX Dataflows by means of VTL operators (e.g. “sub”, “filter”, “calc”, “union” …), maintaining a mapping one-to-one between SDMX Dataflows and VTL datasets. 2091 2091 2092 -[[~[28~]>>path:#_ftnref28]] This definition is made through the ToVtlSubspace and ToVtlSpaceKey classes and/or the FromVtlSuperspace and FromVtlSpaceKey classes, depending on the direction of the mapping (“key” means “dimension”). The mapping of Dataflow subsets can be applied independently in the two directions, also according to different Dimensions. When no Dimension is declared for a given direction, it is assumed that the option of mapping different parts of a SDMX Dataflow to different VTL datasets is not used. 2378 +[[~[28~]>>path:#_ftnref28]] This definition is made through the ToVtlSubspace and ToVtlSpaceKey classes and/or the FromVtlSuperspace and FromVtlSpaceKey classes, depending on the direction of the mapping (“key” means “dimension”). The mapping of Dataflow subsets can be applied independently in the two directions, also according to different Dimensions. When no Dimension is declared for a given direction, it is assumed that the option of mapping different parts of a SDMX Dataflow to different VTL datasets is not used. 2093 2093 2094 2094 [[~[29~]>>path:#_ftnref29]] As a consequence of this formalism, a slash in the name of the VTL dataset assumes the specific meaning of separator between the name of the Dataflow and the values of some of its Dimensions. 2095 2095 ... ... @@ -2097,13 +2097,13 @@ 2097 2097 2098 2098 [[~[31~]>>path:#_ftnref31]] It should be remembered that, according to the VTL consistency rules, a given VTL dataset cannot be the result of more than one VTL transformation. 2099 2099 2100 -[[~[32~]>>path:#_ftnref32]] If these dimensions would not be dropped, taking into account that the typical binary VTL operations at dataset level (+, -, *, / and so on) are executed on the observations having matching identifiers, the VTL datasets resulting from this kind of mapping would have non-matching values for the mapping dimensions (e.g. POPULATION and COUNTRY), therefore it would not be possible to compose the resulting VTL datasets one another (e.g. it would not be possible to calculate the population ratio between USA and CANADA). ^^ ^^ 2386 +[[~[32~]>>path:#_ftnref32]] If these dimensions would not be dropped, taking into account that the typical binary VTL operations at dataset level (+, -, *, / and so on) are executed on the observations having matching identifiers, the VTL datasets resulting from this kind of mapping would have non-matching values for the mapping dimensions (e.g. POPULATION and COUNTRY), therefore it would not be possible to compose the resulting VTL datasets one another (e.g. it would not be possible to calculate the population ratio between USA and CANADA). ^^ ^^ 2101 2101 2102 -[[~[33~]>>path:#_ftnref33]] In case the ordered concatenation notation is used, the VTL Transformation described above, e.g. 2388 +[[~[33~]>>path:#_ftnref33]] In case the ordered concatenation notation is used, the VTL Transformation described above, e.g. 2103 2103 2104 -‘DF1(1.0)/POPULATION.USA’ := DF1(1.0) [ sub INDICATOR=“POPULATION”, COUNTRY=“USA”], is implicitly executed and, in order to test the overall compliance of the VTL program to the VTL consistency rules, it has to be considered as part of the VTL program even if it is not explicitly coded. 2390 +‘DF1(1.0)/POPULATION.USA’ := DF1(1.0) [ sub INDICATOR=“POPULATION”, COUNTRY=“USA”], is implicitly executed and, in order to test the overall compliance of the VTL program to the VTL consistency rules, it has to be considered as part of the VTL program even if it is not explicitly coded. 2105 2105 2106 -[[~[34~]>>path:#_ftnref34]] If the whole DF2(1.0) is calculated by means of just one VTL transformation, then the mapping between the SDMX dataflow and the corresponding VTL dataset is one-to-one and this kind of mapping (one SDMX Dataflow to many VTL datasets) does not apply.. 2392 +[[~[34~]>>path:#_ftnref34]] If the whole DF2(1.0) is calculated by means of just one VTL transformation, then the mapping between the SDMX dataflow and the corresponding VTL dataset is one-to-one and this kind of mapping (one SDMX Dataflow to many VTL datasets) does not apply.. 2107 2107 2108 2108 [[~[35~]>>path:#_ftnref35]] This is possible as each VTL dataset corresponds to one particular combination of values of INDICATOR and COUNTRY 2109 2109 ... ... @@ -2122,5 +2122,3 @@ 2122 2122 [[~[42~]>>path:#_ftnref42]] A Concept becomes a Component in a DataStructureDefinition, and Components can have different LocalRepresentations in different DataStructureDefinitions, also overriding the (possible) base representation of the Concept. 2123 2123 2124 2124 [[~[43~]>>path:#_ftnref43]] The representation given in the DSD should obviously be compatible with the VTL data type. 2125 - 2126 -{{putFootnotes/}}
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