Changes for page 12 Validation and Transformation Language (VTL)
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... ... @@ -1,1 +1,0 @@ 1 -Artefact|Attribute|Code|Code list|Component|Concept scheme|Currency|Data set|Data structure definition|Dataflow|Dimension|Facet|Maintainable artefact|Measure|Nameable artefact|Representation|SDMX Information Model|Statistical data and metadata exchange|Structural metadata|Validation and transformation language - Content
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... ... @@ -2,9 +2,10 @@ 2 2 {{toc/}} 3 3 {{/box}} 4 4 5 -== 12.1 Introduction == 5 +1. 6 +11. Introduction 6 6 7 -The Validation and Transformation Language (VTL) supports the definition of Transformations, which are algorithms to calculate new data starting from already existing ones {{footnote}}The Validation andTransformationLanguageisastandardlanguagedesignedandpublishedunder theSDMXinitiative. VTLisdescribedintheVTL UserandReferenceGuidesavailableon theSDMXwebsitehttps://sdmx.org.{{/footnote}}. The purpose of the VTL in the SDMX context is to enable the:8 +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 wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[1~]^^>>path:#_ftn1]](%%). The purpose of the VTL in the SDMX context is to enable the: 8 8 9 9 * definition of validation and transformation algorithms, in order to specify how to calculate new data from existing ones; 10 10 * 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); ... ... @@ -12,31 +12,33 @@ 12 12 13 13 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"). 14 14 15 -The VTL language can be applied to SDMX artefacts by mapping the SDMX IM model artefacts to the model artefacts that VTL can manipulate {{footnote}}In thischapter,inorder todistinguishVTLandSDMX modelartefacts,theVTL ones arewrittenin theArialfont while theSDMX onesinCourierNew.{{/footnote}}. 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).16 +The VTL language can be applied to SDMX artefacts by mapping the SDMX IM model artefacts to the model artefacts that VTL can manipulate[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[2~]^^>>path:#_ftn2]](%%). 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). 16 16 17 17 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. 18 18 19 19 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. 20 20 21 -== 12.2 References to SDMX artefacts from VTL statements == 22 +1. 23 +11. References to SDMX artefacts from VTL statements 24 +111. Introduction 22 22 23 -=== 12.2.1 Introduction === 24 - 25 25 The VTL can manipulate SDMX artefacts (or objects) by referencing them through predefined conventional names (aliases). 26 26 27 27 The alias of an SDMX artefact can be its URN (Universal Resource Name), an abbreviation of its URN or another user-defined name. 28 28 29 -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 {{footnote}}Seealsothesection"VTL-DL Rulesets"in theVTL Reference Manual.{{/footnote}}orUserDefinedOperators{{footnote}}TheVTLMappingsareusedalsofor User Defined Operators(UDO).Although UDOsareenvisagedto bedefined ongenericoperands,so that the specific artefactsto bemanipulated are passedas parametersattheirinvocation,itisalso possiblethat anUDOinvokesdirectlysome specific SDMX artefacts.These SDMX artefactshaveto bemappedto thecorrespondingaliasesusedinthedefinitionoftheUDO throughtheVtlMappingSchemeand VtlMappingclasses aswell.{{/footnote}}to reference SDMX artefacts. A VtlMappingScheme is a container for zero or more VtlMapping.30 +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 wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[3~]^^>>path:#_ftn3]](%%) or User Defined Operators[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[4~]^^>>path:#_ftn4]](%%) to reference SDMX artefacts. A VtlMappingScheme is a container for zero or more VtlMapping. 30 30 31 31 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. 32 32 33 33 The references through the URN and the abbreviated URN are described in the following paragraphs. 34 34 35 -=== 12.2.2 References through the URN === 36 +1. 37 +11. 38 +111. References through the URN 36 36 37 37 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. 38 38 39 -The SDMX URN {{footnote}}ForacompletedescriptionofthestructureoftheURN seetheSDMX 2.1 Standards- Section5 - RegistrySpecifications,paragraph 6.2.2 ("UniversalResource Name(URN)").{{/footnote}}(%style="font-size:12px" %)(%%)is the concatenation of the following parts, separated by special symbols like dot, equal, asterisk, comma, and parenthesis:42 +The SDMX URN[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[5~]^^>>path:#_ftn5]](%%) is the concatenation of the following parts, separated by special symbols like dot, equal, asterisk, comma, and parenthesis: 40 40 41 41 * SDMXprefix 42 42 * SDMX-IM-package-name ... ... @@ -44,13 +44,15 @@ 44 44 * agency-id 45 45 * maintainedobject-id 46 46 * maintainedobject-version 47 -* container-object-id {{footnote}}Thecontainer-object-idcan repeat andmaynotbepresent.{{/footnote}}50 +* container-object-id [[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[6~]^^>>path:#_ftn6]] 48 48 * object-id 49 49 50 50 The generic structure of the URN is the following: 51 51 52 -SDMXprefix.SDMX-IM-package-name.class-name=agency-id:maintainedobject-id (maintainedobject-version).*container-object-id.object-id55 +SDMXprefix.SDMX-IM-package-name.class-name=agency-id:maintainedobject-id 53 53 57 +(maintainedobject-version).*container-object-id.object-id 58 + 54 54 The **SDMXprefix** is "urn:sdmx:org", always the same for all SDMX artefacts. 55 55 56 56 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". ... ... @@ -59,7 +59,7 @@ 59 59 60 60 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). 61 61 62 -The maintainedobject-id is the name of the maintained object which the artefact belongs to, and in case the artefact itself is maintainable {{footnote}}i.e.,the artefactbelongstoamaintainableclass{{/footnote}}, coincides with the name of the artefact. Therefore the maintainedobject-id depends on the class of the artefact:67 +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 wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[7~]^^>>path:#_ftn7]](%%), coincides with the name of the artefact. Therefore the maintainedobject-id depends on the class of the artefact: 63 63 64 64 * if the artefact is a Dataflow, which is a maintainable class, the maintainedobject-id is the Dataflow name (dataflow-id); 65 65 * if the artefact is a Dimension, Measure, TimeDimension or DataAttribute, which are not maintainable and belong to the ... ... @@ -71,25 +71,28 @@ 71 71 72 72 The maintainedobject-version is the version, according to the SDMX versioning rules, of the maintained object which the artefact belongs to (for example, possible versions might be 1.0, 2.3, 1.0.0, 2.1.0 or 3.1.2). 73 73 74 -The container-object-id does not apply to the classes that can be referenced in VTL Transformations, therefore is not present in their URN .79 +The container-object-id does not apply to the classes that can be referenced in VTL Transformations, therefore is not present in their URN 75 75 76 76 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: 77 77 78 -* if the artefact is a Dimension, TimeDimension, Measure or DataAttribute (the object-id is the name of one of the artefacts above, which are data structure components) 79 -* if the artefact is a Concept (the object-id is the name of the Concept) 83 +* if the artefact is a Dimension, TimeDimension, Measure or 80 80 85 +DataAttribute (the object-id is the name of one of the artefacts above, which are data structure components) 81 81 87 +* if the artefact is a Concept (the object-id is the name of the Concept) 82 82 83 -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 1.0.0 and their Agency is AG, would be written as 89 +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 1.0.0 and their Agency is AG, would be written as[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[8~]^^>>path:#_ftn8]](%%): 84 84 85 - {{footnote}}Since thesereferencesto SDMX objects include non-permitted characters as per the VTL IDnotation, they needto beincluded betweensingle quotes, accordingto the VTL rules forirregular names.{{/footnote}}:91 +'urn:sdmx:org.sdmx.infomodel.datastructure.Dataflow=AG:DFR(1.0.0)' <- 86 86 87 -> 'urn:sdmx:org.sdmx.infomodel.datastructure.Dataflow=AG:DFR(1.0.0)' <- 88 -> 'urn:sdmx:org.sdmx.infomodel.datastructure.Dataflow=AG:DF1(1.0.0)' + 89 -> 'urn:sdmx:org.sdmx.infomodel.datastructure.Dataflow=AG:DF2(1.0.0)' 93 +'urn:sdmx:org.sdmx.infomodel.datastructure.Dataflow=AG:DF1(1.0.0)' + 90 90 91 - === 12.2.3 AbbreviationoftheURN===95 +'urn:sdmx:org.sdmx.infomodel.datastructure.Dataflow=AG:DF2(1.0.0)' 92 92 97 +1. 98 +11. 99 +111. Abbreviation of the URN 100 + 93 93 The complete formulation of the URN described above is exhaustive but verbose, even for very simple statements. In order to reduce the verbosity through a simplified identifier and make the work of transformation definers easier, proper abbreviations of the URN are possible. Using this approach, the referenced artefacts remain intelligible in the VTL code by a human reader. 94 94 95 95 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. ... ... @@ -96,14 +96,15 @@ 96 96 97 97 * 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. 98 98 * 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: 99 -** "datastructure" for the classes Dataflow, Dimension, TimeDimension, Measure, DataAttribute, 100 -** "conceptscheme" for the class Concept, 101 -** "codelist" for the class Codelist. 102 -* 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{{footnote}}For the syntax of the VTL operators see the VTL Reference Manual{{/footnote}}, the SDMX class can be deduced from the mapping rules between VTL and SDMX (see the section "Mapping between VTL and SDMX" hereinafter){{footnote}}In case the invoked artefact is a VTL component, which can be invoked only within the invocation of a VTL data set (SDMX Dataflow), the specific SDMX class-name (e.g. Dimension, TimeDimension, Measure or DataAttribute) can be deduced from the data structure of the SDMX Dataflow, which the component belongs to.{{/footnote}}. 103 -* 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 agencyid can be omitted if it is the same as the invoking TransformationScheme and cannot be omitted if the artefact comes from another agency{{footnote}}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){{/footnote}}. 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). 104 -* As for the maintainedobject-id, this is essential in some cases while in other cases it can be omitted: 105 -** if the referenced artefact is a Dataflow, which is a maintainable class, the maintainedobject-id is the dataflow-id and obviously cannot be omitted; 106 -** if the referenced artefact is a Dimension, TimeDimension, Measure, 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; 107 +** "datastructure" for the classes Dataflow, Dimension, TimeDimension, Measure, DataAttribute, o "conceptscheme" for the class Concept, o "codelist" for the class Codelist. 108 +* 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 wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[9~]^^>>path:#_ftn9]](%%), 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 wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[10~]^^>>path:#_ftn10]](%%). 109 +* 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 agencyid 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 wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[11~]^^>>path:#_ftn11]](%%). 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). 110 +* 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; 111 +** if the referenced artefact is a Dimension, TimeDimension, Measure, 112 + 113 +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; 114 + 115 +* 107 107 ** 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; 108 108 ** if the referenced artefact is a Codelist, which is a maintainable class, the maintainedobject-id is the codelist-id and obviously cannot be omitted. 109 109 * 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. ... ... @@ -110,80 +110,84 @@ 110 110 * 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 111 111 * The object-id does not exist for the artefacts belonging to the Dataflow, and Codelist classes, while it exists and cannot be omitted for the artefacts belonging to the classes Dimension, TimeDimension, Measure, DataAttribute and Concept, as for them the object-id is the main identifier of the artefact 112 112 113 - 114 - 115 115 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. 116 116 117 117 For example, the full formulation that uses the complete URN shown at the end of the previous paragraph: 118 118 119 -> 'urn:sdmx:org.sdmx.infomodel.datastructure.Dataflow=AG:DFR(1.0.0)' := 120 -> 'urn:sdmx:org.sdmx.infomodel.datastructure.Dataflow=AG:DF1(1.0.0)' + 121 -> 'urn:sdmx:org.sdmx.infomodel.datastructure.Dataflow=AG:DF2(1.0.0)' 126 +'urn:sdmx:org.sdmx.infomodel.datastructure.Dataflow=AG:DFR(1.0.0)' := 122 122 128 +'urn:sdmx:org.sdmx.infomodel.datastructure.Dataflow=AG:DF1(1.0.0)' + 129 + 130 +'urn:sdmx:org.sdmx.infomodel.datastructure.Dataflow=AG:DF2(1.0.0)' 131 + 123 123 by omitting all the non-essential parts would become simply: 124 124 125 - >DFR := DF1 + DF2134 +DFR := DF1 + DF2 126 126 127 -The references to the Codelists can be simplified similarly. For example, given the non-abbreviated reference to the Codelist AG:CL_FREQ(1.0.0), which is {{footnote}}Singlequotes areneededbecausethisreferenceisnotaVTL regularname.19 Singlequotes arenot neededin thiscasebecauseCL_FREQisaVTLregular name.{{/footnote}}:136 +The references to the Codelists can be simplified similarly. For example, given the non-abbreviated reference to the Codelist AG:CL_FREQ(1.0.0), which is[[(% class="wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[12~]^^>>path:#_ftn12]](%%): 128 128 129 - >'urn:sdmx:org.sdmx.infomodel.codelist.Codelist=AG:CL_FREQ(1.0.0)'138 +'urn:sdmx:org.sdmx.infomodel.codelist.Codelist=AG:CL_FREQ(1.0.0)' 130 130 131 131 if the Codelist is referenced from a RulesetScheme belonging to the agency AG, omitting all the optional parts, the abbreviated reference would become simply^^19^^: 132 132 133 - >CL_FREQ142 +CL_FREQ 134 134 135 135 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: 136 136 137 - >'urn:sdmx:org.sdmx.infomodel.datastructure.DataStructure=AG:DST1(1.0.0).SECTOR'146 +'urn:sdmx:org.sdmx.infomodel.datastructure.DataStructure=AG:DST1(1.0.0).S 138 138 148 +ECTOR' 149 + 139 139 The corresponding fully abbreviated reference, if made from a TransformationScheme belonging to AG, would become simply: 140 140 141 - >SECTOR152 +SECTOR 142 142 143 -For example, the Transformation for renaming the component SECTOR of the Dataflow DF1 into SEC can be written as {{footnote}}The resultDFR(1.0.0)isbe equal toDF1(1.0.0)save that thecomponentSECTORiscalledSEC{{/footnote}}:154 +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 wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[13~]^^>>path:#_ftn13]](%%): 144 144 145 - >'DFR(1.0.0)' := 'DF1(1.0.0)' [rename SECTOR to SEC]156 +'DFR(1.0.0)' := 'DF1(1.0.0)' [rename SECTOR to SEC] 146 146 147 147 In the references to the Concepts, which can exist for example in the definition of the VTL Rulesets, at least the conceptScheme-id and the concept-id must be specified. 148 148 149 149 An example of non-abbreviated reference, if the conceptScheme-id is CS1 and the concept-id is SECTOR, is the following: 150 150 151 - >'urn:sdmx:org.sdmx.infomodel.conceptscheme.Concept=AG:CS1(1.0.0).SECTOR'162 +'urn:sdmx:org.sdmx.infomodel.conceptscheme.Concept=AG:CS1(1.0.0).SECTOR' 152 152 153 153 The corresponding fully abbreviated reference, if made from a RulesetScheme belonging to AG, would become simply: 154 154 155 - >CS1(1.0.0).SECTOR166 +CS1(1.0.0).SECTOR 156 156 157 157 The Codes and in general all the Values can be written without any other specification, for example, the transformation to check if the values of the measures of the Dataflow DF1 are between 0 and 25000 can be written like follows: 158 158 159 - >'DFR(1.0.0)' := between ( 'DF1(1.0.0)', 0, 25000 )170 +'DFR(1.0.0)' := between ( 'DF1(1.0.0)', 0, 25000 ) 160 160 161 161 The artefact (Component, Concept, Codelist …) which the Values are referred to can be deduced from the context in which the reference is made, taking also into account the VTL syntax. In the Transformation above, for example, the values 0 and 2500 are compared to the values of the measures of DF1(1.0.0). 162 162 163 -=== 12.2.4 User-defined alias === 174 +1. 175 +11. 176 +111. User-defined alias 164 164 165 165 The third possibility for referencing SDMX artefacts from VTL statements is to use user-defined aliases not related to the SDMX URN of the artefact. 166 166 167 167 This approach gives preference to the use of symbolic names for the SDMX artefacts. As a consequence, in the VTL code the referenced artefacts may become not directly intelligible by a human reader. In any case, the VTL aliases are associated to the SDMX URN through the VtlMappingScheme and VtlMapping classes. These classes provide for structured references to SDMX artefacts whatever kind of reference is used in VTL statements (URN, abbreviated URN or user-defined aliases). 168 168 169 -=== 12.2.5 References to SDMX artefacts from VTL Rulesets === 182 +1. 183 +11. 184 +111. References to SDMX artefacts from VTL Rulesets 170 170 171 -The VTL Rulesets allow defining sets of reusable Rules that can be applied by some 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: when the Country is USA then the Currency is USD; (ii) the Benelux is composed by Belgium, Luxembourg, Netherlands. 186 +The VTL Rulesets allow defining sets of reusable Rules that can be applied by some 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. 172 172 173 173 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. 174 174 175 -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, while a reference to a VTL Represented Variable becomes a reference to a SDMX Concept, assuming for it a definite representation {{footnote}}Rulesetsofthiskind cannotbereusedwhen the referencedConcepthasadifferent representation.{{/footnote}}.190 +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, 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 wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[14~]^^>>path:#_ftn14]](%%). 176 176 177 -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). 192 +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 wikiinternallink wikiinternallink wikiinternallink wikiinternallink" %)^^~[15~]^^>>path:#_ftn15]] 178 178 179 -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.{{footnote}}See also the section "VTL-DL Rulesets" in the VTL Reference Manual.{{/footnote}} 180 - 181 181 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, Concept) to can be deduced from the Ruleset signature. 182 182 183 -== 12.3 Mapping between SDMX and VTL artefacts == 196 +1. 197 +11. Mapping between SDMX and VTL artefacts 198 +111. When the mapping occurs 184 184 185 -=== 12.3.1. When the mapping occurs === 186 - 187 187 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. 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. 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. 188 188 189 189 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{{footnote}}If a calculated artefact is persistent, it needs a persistent definition, i.e. a SDMX definition in a SDMX environment. In addition, possible calculated artefact that are not persistent may require a SDMX definition, for example when the result of a nonpersistent calculation is disseminated through SDMX tools (like an inquiry tool).{{/footnote}}. ... ... @@ -190,7 +190,9 @@ 190 190 191 191 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 ‘usage’ 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). 192 192 193 -=== 12.3.2 General mapping of VTL and SDMX data structures === 206 +1. 207 +11. 208 +111. General mapping of VTL and SDMX data structures 194 194 195 195 This section makes reference to the VTL "Model for data and their structure"{{footnote}}See the VTL 2.0 User Manual{{/footnote}} and the correspondent SDMX "Data Structure Definition"{{footnote}}See the SDMX Standards Section 2 – Information Model{{/footnote}}. 196 196 ... ... @@ -206,31 +206,34 @@ 206 206 207 207 The possible mapping options are described in more detail in the following sections. 208 208 209 -=== 12.3.3 Mapping from SDMX to VTL data structures === 224 +1. 225 +11. 226 +111. Mapping from SDMX to VTL data structures 210 210 211 - ====12.3.3.1 Basic Mapping====228 +**12.3.3.1 Basic Mapping** 212 212 213 213 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. 214 214 215 215 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: 216 216 217 -(% style="width:468.294px" %) 218 -|(% style="width:196px" %)**SDMX**|(% style="width:269px" %)**VTL** 219 -|(% style="width:196px" %)Dimension|(% style="width:269px" %)(Simple) Identifier 220 -|(% style="width:196px" %)TimeDimension|(% style="width:269px" %)(Time) Identifier 221 -|(% style="width:196px" %)Measure|(% style="width:269px" %)Measure 222 -|(% style="width:196px" %)DataAttribute|(% style="width:269px" %)Attribute 234 +|**SDMX**|**VTL** 235 +|Dimension|(Simple) Identifier 236 +|TimeDimension|(Time) Identifier 237 +|Measure|Measure 238 +|DataAttribute|Attribute 223 223 224 224 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). 225 225 226 226 With the Basic mapping, one SDMX observation^^27^^ generates one VTL data point. 227 227 228 - ====12.3.3.2 Pivot Mapping====244 +**12.3.3.2 Pivot Mapping** 229 229 230 230 An alternative mapping method from SDMX to VTL is the **Pivot **mapping, which makes sense and is different from the Basic method only for the SDMX data structures that contain a Dimension that plays the role of measure dimension (like in SDMX 2.1) and just one Measure. Through this method, these structures can be mapped to multimeasure VTL data structures. Besides that, a user may choose to use any Dimension acting as a list of Measures (e.g., a Dimension with indicators), either by considering the “Measure” role of a Dimension, or at will using any coded Dimension. Of course, in SDMX 3.0, this can only work when only one Measure is defined in the DSD. 231 231 232 -In SDMX 2.1 the MeasureDimension was a subclass of DimensionComponent like Dimension and TimeDimension. In the current SDMX version, this subclass does not exist anymore, however a Dimension can have the role of measure dimension (i.e. a Dimension that contributes to the identification of the measures). In SDMX 2.1 a DataStructure could have zero or one MeasureDimensions, in the current version of the standard, from zero to many Dimension may have the role of measure dimension. Hereinafter a Dimension that plays the role of measure dimension is referenced for simplicity as “MeasureDimension“, i.e. maintaining the capital letters and the courier font even if the MeasureDimension is not anymore a class in the SDMX Information Model of the current SDMX version. For the sake of simplicity, the description below considers just one Dimension having the role of MeasureDimension (i.e., the more simple and common case). Nevertheless, it maintains its validity also if in the DataStructure there are more dimension with the role of MeasureDimensions: in this case what is said about the MeasureDimension must be applied to the combination of all the MeasureDimensions considered as a joint variable{{footnote}}E.g., if in the data structure there exist 3 Dimensions C,D,E having the role of MeasureDimension, they should be considered as a joint MeasureDimension Z=(C,D,E); therefore when the description says “each possible value Cj of the MeasureDimension …” it means “each possible combination of values (Cj, Dk, Ew) of the joint MeasureDimension Z=(C,D,E)”.{{/footnote}}.248 +In SDMX 2.1 the MeasureDimension was a subclass of DimensionComponent like Dimension and TimeDimension. In the current SDMX version, this subclass does not exist anymore, however a Dimension can have the role of measure dimension (i.e. a Dimension that contributes to the identification of the measures). In SDMX 2.1 a DataStructure could have zero or one MeasureDimensions, in the current version of the standard, from zero to many Dimension may have the role of measure dimension. Hereinafter a Dimension that plays the role of measure dimension is referenced for simplicity as “MeasureDimension“, i.e. maintaining the capital letters and the courier font even if the MeasureDimension is not anymore a class in the SDMX Information Model of the current SDMX version. For the sake of simplicity, the description below considers just one Dimension having the role of MeasureDimension (i.e., the more simple and common case). Nevertheless, it maintains its validity also if in the DataStructure there are more dimension with the role of MeasureDimensions: in this case what is said about the MeasureDimension must be applied to the combination of all the 233 233 250 +MeasureDimensions considered as a joint variable{{footnote}}E.g., if in the data structure there exist 3 Dimensions C,D,E having the role of MeasureDimension, they should be considered as a joint MeasureDimension Z=(C,D,E); therefore when the description says “each possible value Cj of the MeasureDimension …” it means “each possible combination of values (Cj, Dk, Ew) of the joint MeasureDimension Z=(C,D,E)”.{{/footnote}}. 251 + 234 234 Among other things, the Pivot method provides also backward compatibility with the SDMX 2.1 data structures that contained a MeasureDimension. 235 235 236 236 If applied to SDMX structures that do not contain any MeasureDimension, this method behaves like the Basic mapping (see the previous paragraph). ... ... @@ -243,19 +243,18 @@ 243 243 * The SDMX Measure is not mapped to VTL as well (it disappears in the VTL Data Structure); 244 244 * An SDMX DataAttribute is mapped in different ways according to its AttributeRelationship: 245 245 ** 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; 246 -** 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 Code 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 Code of the MeasureDimension separated by underscore. For example, if the SDMX DataAttribute is named DA and the possible Codes 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). 247 -** 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. 264 +** 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 Code 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 Code of the MeasureDimension separated by underscore. For example, if the SDMX DataAttribute is named DA and the possible Codes 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. 248 248 249 249 The summary mapping table of the "pivot" mapping from SDMX to VTL for the SDMX data structures that contain a MeasureDimension is the following: 250 250 251 -(% style="width:739.294px" %) 252 -|(% style="width:335px" %)**SDMX**|(% style="width:400px" %)**VTL** 253 -|(% style="width:335px" %)Dimension|(% style="width:400px" %)(Simple) Identifier 254 -|(% style="width:335px" %)TimeDimension|(% style="width:400px" %)(Time) Identifier 255 -|(% style="width:335px" %)MeasureDimension & one Measure|(% style="width:400px" %)One Measure for each Code of the SDMX MeasureDimension 256 -|(% style="width:335px" %)DataAttribute not depending on the MeasureDimension|(% style="width:400px" %)Attribute 257 -|(% style="width:335px" %)DataAttribute depending on the MeasureDimension|(% style="width:400px" %)((( 268 +|**SDMX**|**VTL** 269 +|Dimension|(Simple) Identifier 270 +|TimeDimension|(Time) Identifier 271 +|MeasureDimension & one Measure|One Measure for each Code of the SDMX MeasureDimension 272 +|DataAttribute not depending on the MeasureDimension|Attribute 273 +|DataAttribute depending on the MeasureDimension|((( 258 258 One Attribute for each Code of the 275 + 259 259 SDMX MeasureDimension 260 260 ))) 261 261 ... ... @@ -264,21 +264,31 @@ 264 264 At observation / data point level, calling Cj (j=1, … n) the j^^th^^ Code of the MeasureDimension: 265 265 266 266 * 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 Code Cj of the SDMX MeasureDimension; 267 -* 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. 268 -* The value of the Measure of the SDMX observation belonging to the set above and having MeasureDimension=Cj becomes the value of the VTL Measure Cj 284 +* 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) 285 + 286 +Identifiers, (time) Identifier and Attributes. 287 + 288 +* The value of the Measure of the SDMX observation belonging to the set above and having MeasureDimension=Cj becomes the value of the VTL Measure 289 + 290 +Cj 291 + 269 269 * 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 270 270 271 - ====12.3.3.3 From SDMX DataAttributes to VTL Measures====294 +**12.3.3.3 From SDMX DataAttributes to VTL Measures** 272 272 273 -* 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.296 +* 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 274 274 298 +Attributes. 299 + 275 275 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. 276 276 277 277 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. 278 278 279 -=== 12.3.4 Mapping from VTL to SDMX data structures === 304 +1. 305 +11. 306 +111. Mapping from VTL to SDMX data structures 280 280 281 - ====12.3.4.1 Basic Mapping====308 +**12.3.4.1 Basic Mapping** 282 282 283 283 The main mapping method **from VTL to SDMX** is called **Basic **mapping as well. 284 284 ... ... @@ -288,12 +288,11 @@ 288 288 289 289 Mapping table: 290 290 291 -(% style="width:470.294px" %) 292 -|(% style="width:262px" %)**VTL**|(% style="width:205px" %)**SDMX** 293 -|(% style="width:262px" %)(Simple) Identifier|(% style="width:205px" %)Dimension 294 -|(% style="width:262px" %)(Time) Identifier|(% style="width:205px" %)TimeDimension 295 -|(% style="width:262px" %)Measure|(% style="width:205px" %)Measure 296 -|(% style="width:262px" %)Attribute|(% style="width:205px" %)DataAttribute 318 +|**VTL**|**SDMX** 319 +|(Simple) Identifier|Dimension 320 +|(Time) Identifier|TimeDimension 321 +|Measure|Measure 322 +|Attribute|DataAttribute 297 297 298 298 If the distinction between simple identifier and time identifier is not maintained in the VTL environment, the classification between Dimension and TimeDimension exists only in SDMX, as declared in the relevant DataStructureDefinition. 299 299 ... ... @@ -303,7 +303,7 @@ 303 303 304 304 As said, the resulting SDMX definitions must be compliant with the SDMX consistency rules. For example, the SDMX DSD must have the AttributeRelationship for the DataAttributes, which does not exist in VTL. 305 305 306 - ====12.3.4.2 Unpivot Mapping====332 +**12.3.4.2 Unpivot Mapping** 307 307 308 308 An alternative mapping method from VTL to SDMX is the **Unpivot **mapping. 309 309 ... ... @@ -321,12 +321,11 @@ 321 321 322 322 The summary mapping table of the **unpivot** mapping method is the following: 323 323 324 -(% style="width:638.294px" %) 325 -|(% style="width:200px" %)**VTL**|(% style="width:435px" %)**SDMX** 326 -|(% style="width:200px" %)(Simple) Identifier|(% style="width:435px" %)Dimension 327 -|(% style="width:200px" %)(Time) Identifier|(% style="width:435px" %)TimeDimension 328 -|(% style="width:200px" %)All Measure Components|(% style="width:435px" %)MeasureDimension (having one Code for each VTL measure component) & one Measure 329 -|(% style="width:200px" %)Attribute|(% style="width:435px" %)DataAttribute depending on all SDMX Dimensions including the TimeDimension and except the MeasureDimension 350 +|**VTL**|**SDMX** 351 +|(Simple) Identifier|Dimension 352 +|(Time) Identifier|TimeDimension 353 +|All Measure Components|MeasureDimension (having one Code for each VTL measure component) & one Measure 354 +|Attribute|DataAttribute depending on all SDMX Dimensions including the TimeDimension and except the MeasureDimension 330 330 331 331 At observation / data point level: 332 332 ... ... @@ -340,7 +340,7 @@ 340 340 341 341 In any case, the resulting SDMX definitions must be compliant with the SDMX consistency rules. For example, the possible Codes of the SDMX MeasureDimension need to be listed in a SDMX Codelist, with proper id, agency and version; moreover, the SDMX DSD must have the AttributeRelationship for the DataAttributes, which does not exist in VTL. 342 342 343 - ====12.3.4.3 From VTL Measures to SDMX Data Attributes====368 +**12.3.4.3 From VTL Measures to SDMX Data Attributes** 344 344 345 345 More than all 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 some VTL measures in a corresponding SDMX Measures and all the other VTL Measures in SDMX DataAttributes. This method is called M2A (“M2A” stands for “Measures to DataAttributes”). 346 346 ... ... @@ -348,17 +348,18 @@ 348 348 349 349 The mapping table is the following: 350 350 351 -(% style="width:467.294px" %) 352 -|(% style="width:214px" %)VTL|(% style="width:250px" %)SDMX 353 -|(% style="width:214px" %)(Simple) Identifier|(% style="width:250px" %)Dimension 354 -|(% style="width:214px" %)(Time) Identifier|(% style="width:250px" %)TimeDimension 355 -|(% style="width:214px" %)Some Measures|(% style="width:250px" %)Measure 356 -|(% style="width:214px" %)Other Measures|(% style="width:250px" %)DataAttribute 357 -|(% style="width:214px" %)Attribute|(% style="width:250px" %)DataAttribute 376 +|VTL|SDMX 377 +|(Simple) Identifier|Dimension 378 +|(Time) Identifier|TimeDimension 379 +|Some Measures|Measure 380 +|Other Measures|DataAttribute 381 +|Attribute|DataAttribute 358 358 359 359 Even in this case, the resulting SDMX definitions must be compliant with the SDMX consistency rules. For example, the SDMX DSD must have the attributeRelationship for the DataAttributes, which does not exist in VTL. 360 360 361 -=== 12.3.5 Declaration of the mapping methods between data structures === 385 +1. 386 +11. 387 +111. Declaration of the mapping methods between data structures 362 362 363 363 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. 364 364 ... ... @@ -368,10 +368,14 @@ 368 368 369 369 The VtlMappingScheme is a container for zero or more VtlDataflowMapping (it may contain also mappings towards artefacts other than dataflows). 370 370 371 -=== 12.3.6 Mapping dataflow subsets to distinct VTL Data Sets === 397 +1. 398 +11. 399 +111. Mapping dataflow subsets to distinct VTL Data Sets 372 372 373 -Until now it has been assumed to map one SMDX Dataflow to one VTL Data Set 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).401 +Until now it has been assumed to map one SMDX Dataflow to one VTL Data Set 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 374 374 403 +(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). 404 + 375 375 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.{{footnote}}A typical example of this kind is the validation, and more in general the manipulation, of individual time series belonging to the same Dataflow, identifiable through the DimensionComponents of the Dataflow except the TimeDimension. The coding of these kind of operations might be simplified by mapping distinct time series (i.e. different parts of a SDMX Dataflow) to distinct VTL Data Sets.{{/footnote}} 376 376 377 377 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.{{footnote}}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 Data Sets.{{/footnote}} ... ... @@ -392,11 +392,11 @@ 392 392 393 393 Therefore, the generic name of this kind of VTL datasets would be: 394 394 395 - >'DF(1.0.0)/INDICATORvalue.COUNTRYvalue'425 +'DF(1.0.0)/INDICATORvalue.COUNTRYvalue' 396 396 397 397 Where DF(1.0.0) is the Dataflow and //INDICATORvalue// and //COUNTRYvalue //are placeholders for one value of the INDICATOR and COUNTRY dimensions. Instead the specific name of one of these VTL datasets would be: 398 398 399 - >‘DF(1.0.0)/POPULATION.USA’429 +‘DF(1.0.0)/POPULATION.USA’ 400 400 401 401 In particular, this is the VTL dataset that contains all the observations of the Dataflow DF(1.0.0) for which //INDICATOR// = POPULATION and //COUNTRY// = USA. 402 402 ... ... @@ -410,22 +410,26 @@ 410 410 411 411 SDMX Dataflow having INDICATOR=//INDICATORvalue //and COUNTRY=// COUNTRYvalue//. For example, the VTL dataset ‘DF1(1.0.0)/POPULATION.USA’ would contain all the observations of DF1(1.0.0) having INDICATOR = POPULATION and COUNTRY = USA. 412 412 413 -In order to obtain the data structure of these VTL Data Sets from the SDMX one, it is assumed that the SDMX DimensionComponents 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 Data Sets{{footnote}}If these DimensionComponents would not be dropped, the various VTL Data Sets resulting from this kind of mapping would have non-matching values for the Identifiers corresponding to the mapping Dimensions (e.g. POPULATION and COUNTRY). As a consequence, taking into account that the typical binary VTL operations at dataset level (+, -, *, / and so on) are executed on the observations having matching values for the identifiers, 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).{{/footnote}}. After that, the mapping method from SDMX to VTL specified for the Dataflow DF1(1.0.0) is applied (i.e. basic, pivot …).443 +In order to obtain the data structure of these VTL Data Sets from the SDMX one, it is assumed that the SDMX DimensionComponents 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 Data Sets{{footnote}}If these DimensionComponents would not be dropped, the various VTL Data Sets resulting from this kind of mapping would have non-matching values for the Identifiers corresponding to the mapping Dimensions (e.g. POPULATION and COUNTRY). As a consequence, taking into account that the typical binary VTL operations at dataset level (+, -, *, / and so on) are executed on the observations having matching values for the identifiers, 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).{{/footnote}}. After that, the mapping method from SDMX to VTL specified for the Dataflow DF1(1.0.0) is applied (i.e. 414 414 445 +basic, pivot …). 446 + 415 415 In the example above, for all the datasets of the kind 416 416 417 - >‘DF1(1.0.0)///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.449 +‘DF1(1.0.0)///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. 418 418 419 419 It should be noted that the desired VTL Data Sets (i.e. of the kind ‘DF1(1.0.0)/// INDICATORvalue//.//COUNTRYvalue//’) can be obtained also by applying the VTL operator “**sub**” (subspace) to the Dataflow DF1(1.0.0), like in the following VTL expression: 420 420 421 -> ‘DF1(1.0.0)/POPULATION.USA’ := 422 -> DF1(1.0.0) [ sub INDICATOR=“POPULATION”, COUNTRY=“USA” ]; 423 -> 424 -> ‘DF1(1.0.0)/POPULATION.CANADA’ := 425 -> DF1(1.0.0) [ sub INDICATOR=“POPULATION”, COUNTRY=“CANADA” ]; 426 -> 427 -> … … … 453 +‘DF1(1.0.0)/POPULATION.USA’ := 428 428 455 +DF1(1.0.0) [ sub INDICATOR=“POPULATION”, COUNTRY=“USA” ]; 456 + 457 +‘DF1(1.0.0)/POPULATION.CANADA’ := 458 + 459 +DF1(1.0.0) [ sub INDICATOR=“POPULATION”, COUNTRY=“CANADA” ]; 460 + 461 +… … … 462 + 429 429 In fact the VTL operator “sub” has exactly the same behaviour. Therefore, mapping different parts of a SDMX Dataflow to different VTL Data Sets 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.{{footnote}}In case the ordered concatenation notation is used, the VTL Transformation described above, e.g. ‘DF1(1.0)/POPULATION.USA’ := DF1(1.0) [ sub INDICATOR=“POPULATION”, COUNTRY=“USA”], is implicitly executed. 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.{{/footnote}} 430 430 431 431 In the direction from SDMX to VTL it is allowed to omit the value of one or more DimensionComponents 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. ... ... @@ -434,9 +434,10 @@ 434 434 435 435 This is equivalent to the application of the VTL “sub” operator only to the identifier //INDICATOR//: 436 436 437 -> ‘DF1(1.0.0)/POPULATION.’ := 438 -> DF1(1.0.0) [ sub INDICATOR=“POPULATION” ]; 471 +‘DF1(1.0.0)/POPULATION.’ := 439 439 473 +DF1(1.0.0) [ sub INDICATOR=“POPULATION” ]; 474 + 440 440 Therefore the VTL Data Set ‘DF1(1.0.0)/POPULATION.’ would have the identifiers COUNTRY and TIME_PERIOD. 441 441 442 442 Heterogeneous invocations of the same Dataflow are allowed, i.e. omitting different Dimensions in different invocations. ... ... @@ -454,34 +454,59 @@ 454 454 455 455 The corresponding VTL Transformations, assuming that the result needs to be persistent, would be of this kind:{{footnote}}the symbol of the VTL persistent assignment is used (<-){{/footnote}} 456 456 457 - >‘DF2(1.0.0)/INDICATORvalue.COUNTRYvalue’ <- expression492 +‘DF2(1.0.0)/INDICATORvalue.COUNTRYvalue’ <- expression 458 458 459 459 Some examples follow, for some specific values of INDICATOR and COUNTRY: 460 460 461 -> ‘DF2(1.0.0)/GDPPERCAPITA.USA’ <- expression11; ‘DF2(1.0.0)/GDPPERCAPITA.CANADA’ <- expression12; 462 -> … … … 463 -> ‘DF2(1.0.0)/POPGROWTH.USA’ <- expression21; 464 -> ‘DF2(1.0.0)/POPGROWTH.CANADA’ <- expression22; 465 -> … … … 496 +‘DF2(1.0.0)/GDPPERCAPITA.USA’ <- expression11; ‘DF2(1.0.0)/GDPPERCAPITA.CANADA’ <- expression12; 466 466 498 +… … … 499 + 500 +‘DF2(1.0.0)/POPGROWTH.USA’ <- expression21; 501 + 502 +‘DF2(1.0.0)/POPGROWTH.CANADA’ <- expression22; 503 + 504 +… … … 505 + 467 467 As said, it is assumed that these VTL derived Data Sets 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: 468 468 469 -> VTL dataset INDICATOR value COUNTRY value 470 -> 471 -> ‘DF2(1.0.0)/GDPPERCAPITA.USA’ GDPPERCAPITA USA 472 -> ‘DF2(1.0.0)/GDPPERCAPITA.CANADA’ GDPPERCAPITA CANADA … … … 473 -> 474 -> ‘DF2(1.0.0)/POPGROWTH.USA’ POPGROWTH USA 475 -> ‘DF2(1.0.0)/POPGROWTH.CANADA’ POPGROWTH CANADA 476 -> … … … 508 +VTL dataset INDICATOR value COUNTRY value 477 477 510 + 511 +‘DF2(1.0.0)/GDPPERCAPITA.USA’ GDPPERCAPITA USA 512 + 513 +‘DF2(1.0.0)/GDPPERCAPITA.CANADA’ GDPPERCAPITA CANADA … … … 514 + 515 +‘DF2(1.0.0)/POPGROWTH.USA’ POPGROWTH USA 516 + 517 +‘DF2(1.0.0)/POPGROWTH.CANADA’ POPGROWTH CANADA 518 + 519 +… … … 520 + 478 478 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(1.0.0)), that can be mapped oneto-one to the homonymous SDMX Dataflow. Following the same example, these VTL Transformations would be: 479 479 480 -> DF2bis_GDPPERCAPITA_USA := ‘DF2(1.0.0)/GDPPERCAPITA.USA’ [calc identifier INDICATOR := ”GDPPERCAPITA”, identifier COUNTRY := ”USA”]; DF2bis_GDPPERCAPITA_CANADA := ‘DF2(1.0.0)/GDPPERCAPITA.CANADA’ [calc identifier INDICATOR:=”GDPPERCAPITA”, identifier COUNTRY:=”CANADA”];… … … DF2bis_POPGROWTH_USA := ‘DF2(1.0.0)/POPGROWTH.USA’ [calc identifier INDICATOR := ”POPGROWTH”, identifier COUNTRY := ”USA”]; DF2bis_POPGROWTH_CANADA’ := ‘DF2(1.0.0)/POPGROWTH.CANADA’ [calc identifier INDICATOR := ”POPGROWTH”, identifier COUNTRY := ”CANADA”];… … … DF2(1.0) <- UNION (DF2bis_GDPPERCAPITA_USA’, DF2bis_GDPPERCAPITA_CANADA’, 481 -> … , 482 -> DF2bis_POPGROWTH_USA’, DF2bis_POPGROWTH_CANADA’ 483 -> …); 523 +DF2bis_GDPPERCAPITA_USA := ‘DF2(1.0.0)/GDPPERCAPITA.USA’ [calc identifier INDICATOR := ”GDPPERCAPITA”, identifier COUNTRY := ”USA”]; 484 484 525 +DF2bis_GDPPERCAPITA_CANADA := ‘DF2(1.0.0)/GDPPERCAPITA.CANADA’ [calc identifier INDICATOR:=”GDPPERCAPITA”, identifier COUNTRY:=”CANADA”]; … … … 526 + 527 +DF2bis_POPGROWTH_USA := ‘DF2(1.0.0)/POPGROWTH.USA’ 528 + 529 +[calc identifier INDICATOR := ”POPGROWTH”, identifier COUNTRY := ”USA”]; 530 + 531 +DF2bis_POPGROWTH_CANADA’ := ‘DF2(1.0.0)/POPGROWTH.CANADA’ [calc identifier INDICATOR := ”POPGROWTH”, identifier COUNTRY := ”CANADA”]; … … … 532 + 533 +DF2(1.0) <- UNION (DF2bis_GDPPERCAPITA_USA’, 534 + 535 +DF2bis_GDPPERCAPITA_CANADA’, 536 + 537 +… , 538 + 539 +DF2bis_POPGROWTH_USA’, 540 + 541 +DF2bis_POPGROWTH_CANADA’ 542 + 543 +…); 544 + 485 485 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){{footnote}}The result is persistent in this example but it can be also non persistent if needed.{{/footnote}}, which can be mapped one-to-one to the homonymous SDMX Dataflow having the dimension components TIME_PERIOD, INDICATOR and COUNTRY. 486 486 487 487 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.{{footnote}}In case the ordered concatenation notation from VTL to SDMX is used, the set of Transformations described above is implicitly performed; therefore, in order to test the overall compliance of the VTL program to the VTL consistency rules, these implicit Transformations have to be considered as part of the VTL program even if they are not explicitly coded.{{/footnote}}{{footnote}}Through SDMX Constraints, it is possible to specify the values that a Component of a Dataflow can assume.{{/footnote}} ... ... @@ -488,30 +488,33 @@ 488 488 489 489 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). 490 490 491 -=== 12.3.7 Mapping variables and value domains between VTL and SDMX === 551 +1. 552 +11. 553 +111. Mapping variables and value domains between VTL and SDMX 492 492 493 493 With reference to the VTL “model for Variables and Value domains”, the following additional mappings have to be considered: 494 494 495 -(% style="width:706.294px" %) 496 -|(% style="width:257px" %)VTL|(% style="width:446px" %)SDMX 497 -|(% style="width:257px" %)**Data Set Component**|(% style="width:446px" %)Although this abstraction exists in SDMX, it does not have an explicit definition and correspond to a Component (either a DimensionComponent or a Measure or a DataAttribute) belonging to one specific Dataflow^^43^^ 498 -|(% style="width:257px" %)**Represented Variable**|(% style="width:446px" %)**Concept** with a definite Representation 499 -|(% style="width:257px" %)**Value Domain**|(% style="width:446px" %)((( 557 +|VTL|SDMX 558 +|**Data Set Component**|Although this abstraction exists in SDMX, it does not have an explicit definition and correspond to a Component (either a DimensionComponent or a Measure or a DataAttribute) belonging to one specific Dataflow^^43^^ 559 +|**Represented Variable**|**Concept** with a definite Representation 560 +|**Value Domain**|((( 500 500 **Representation** (see the Structure 562 + 501 501 Pattern in the Base Package) 502 502 ))) 503 -| (% style="width:257px" %)**Enumerated Value Domain / Code List**|(% style="width:446px" %)**Codelist**504 -| (% style="width:257px" %)**Code**|(% style="width:446px" %)**Code** (for enumerated DimensionComponent, Measure, DataAttribute)505 -| (% style="width:257px" %)**Described Value Domain**|(% style="width:446px" %)(((565 +|**Enumerated Value Domain / Code List**|**Codelist** 566 +|**Code**|**Code** (for enumerated DimensionComponent, Measure, DataAttribute) 567 +|**Described Value Domain**|((( 506 506 non-enumerated** Representation** 569 + 507 507 (having Facets / ExtendedFacets, see the Structure Pattern in the Base Package) 508 508 ))) 509 -| (% style="width:257px" %)**Value**|(% style="width:446px" %)Although this abstraction exists in SDMX, it does not have an explicit definition and correspond to a **Code** of a Codelist (for enumerated Representations) or510 -| (%style="width:257px" %)|(% style="width:446px" %)to a valid **value **(for non-enumerated** **Representations)511 -| (% style="width:257px" %)**Value Domain Subset / Set**|(% style="width:446px" %)This abstraction does not exist in SDMX512 -| (% style="width:257px" %)**Enumerated Value Domain Subset / Enumerated Set**|(% style="width:446px" %)This abstraction does not exist in SDMX513 -| (% style="width:257px" %)**Described Value Domain Subset / Described Set**|(% style="width:446px" %)This abstraction does not exist in SDMX514 -| (% style="width:257px" %)**Set list**|(% style="width:446px" %)This abstraction does not exist in SDMX572 +|**Value**|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 573 +| |to a valid **value **(for non-enumerated** **Representations) 574 +|**Value Domain Subset / Set**|This abstraction does not exist in SDMX 575 +|**Enumerated Value Domain Subset / Enumerated Set**|This abstraction does not exist in SDMX 576 +|**Described Value Domain Subset / Described Set**|This abstraction does not exist in SDMX 577 +|**Set list**|This abstraction does not exist in SDMX 515 515 516 516 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). 517 517 ... ... @@ -519,10 +519,8 @@ 519 519 520 520 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 521 521 522 - >DS_c := DS_a + DS_b (where DS_a, DS_b, DS_c are VTL Data Sets)585 +DS_c := DS_a + DS_b (where DS_a, DS_b, DS_c are VTL Data Sets) 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. 523 523 524 -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. 525 - 526 526 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 527 527 528 528 Transformations to ensure that the VTL expressions are consistent with the actual representations of the correspondent SDMX Concepts. ... ... @@ -529,28 +529,28 @@ 529 529 530 530 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. ISOalpha-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. 531 531 532 -== 12.4 Mapping between SDMX and VTL Data Types == 593 +1. 594 +11. Mapping between SDMX and VTL Data Types 595 +111. VTL Data types 533 533 534 -=== 12.4.1 VTL Data types === 535 - 536 536 According to the VTL User Guide the possible operations in VTL depend on the data types of the artefacts. For example, numbers can be multiplied but text strings cannot. In the VTL Transformations, the compliance between the operators and the data types of their operands is statically checked, i.e., violations result in compile-time errors. 537 537 538 538 The VTL data types are sub-divided in scalar types (like integers, strings, etc.), which are the types of the scalar values, and compound types (like Data Sets, Components, Rulesets, etc.), which are the types of the compound structures. See below the diagram of the VTL data types, taken from the VTL User Manual: 539 539 540 -[[image:175007028 8958-132.png]]601 +[[image:1750067055028-964.png]] 541 541 542 - **Figure 22 – VTL Data Types**603 +==== Figure 22 – VTL Data Types ==== 543 543 544 544 The VTL scalar types are in turn subdivided in basic scalar types, which are elementary (not defined in term of other data types) and Value Domain and Set scalar types, which are defined in terms of the basic scalar types. 545 545 546 546 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): 547 547 548 - [[image:1750070310572-584.png]]609 +==== Figure 23 – VTL Basic Scalar Types ==== 549 549 550 -**Figure 23 – VTL Basic Scalar Types** 611 +1. 612 +11. 613 +111. VTL basic scalar types and SDMX data types 551 551 552 -=== 12.4.2 VTL basic scalar types and SDMX data types === 553 - 554 554 The VTL assumes that a basic scalar type has a unique internal representation and can have more external representations. 555 555 556 556 The internal representation is the format used within a VTL system to represent (and process) all the scalar values of a certain type. In principle, this format is hidden and not necessarily known by users. The external representations are instead the external formats of the values of a certain basic scalar type, i.e. the formats known by the users. For example, the internal representation of the dates can be an integer counting the days since a predefined date (e.g. from 01/01/4713 BC up to 31/12/5874897 AD like in Postgres) while two possible external representations are the formats YYYY-MMGG and MM-GG-YYYY (e.g. respectively 2010-12-31 and 12-31-2010). ... ... @@ -567,258 +567,309 @@ 567 567 568 568 The opposite conversion, i.e. from VTL to SDMX, happens when a VTL result, i.e. a VTL Data Set output of a Transformation, must become a SDMX artefact (or part of it). The values of the VTL result must be converted into the desired (SDMX) external representations (data types) of the SDMX artefact. 569 569 570 -=== 12.4.3 Mapping SDMX data types to VTL basic scalar types === 631 +1. 632 +11. 633 +111. Mapping SDMX data types to VTL basic scalar types 571 571 572 572 The following table describes the default mapping for converting from the SDMX data types to the VTL basic scalar types. 573 573 574 -(% style="width:583.294px" %) 575 -|(% style="width:360px" %)SDMX data type 576 -(BasicComponentDataType)|(% style="width:221px" %)Default VTL basic scalar type 577 -|(% style="width:360px" %)((( 637 +|SDMX data type (BasicComponentDataType)|Default VTL basic scalar type 638 +|((( 578 578 String 640 + 579 579 (string allowing any character) 580 -)))|(% style="width:221px" %)string 581 -|(% style="width:360px" %)((( 582 -Alpha 642 +)))|string 643 +|((( 644 +Alpha 645 + 583 583 (string which only allows A-z) 584 -)))| (%style="width:221px" %)string585 -|( % style="width:360px" %)(((647 +)))|string 648 +|((( 586 586 AlphaNumeric 650 + 587 587 (string which only allows A-z and 0-9) 588 -)))| (%style="width:221px" %)string589 -|( % style="width:360px" %)(((652 +)))|string 653 +|((( 590 590 Numeric 655 + 591 591 (string which only allows 0-9, but is not numeric so that is can having leading zeros) 592 -)))| (%style="width:221px" %)string593 -|( % style="width:360px" %)(((657 +)))|string 658 +|((( 594 594 BigInteger 660 + 595 595 (corresponds to XML Schema xs:integer datatype; infinite set of integer values) 596 -)))| (% style="width:221px" %)integer597 -|( % style="width:360px" %)(((662 +)))|integer 663 +|((( 598 598 Integer 665 + 599 599 (corresponds to XML Schema xs:int datatype; between -2147483648 and +2147483647 667 + 600 600 (inclusive)) 601 -)))| (% style="width:221px" %)integer602 -|( % style="width:360px" %)(((669 +)))|integer 670 +|((( 603 603 Long 672 + 604 604 (corresponds to XML Schema xs:long datatype; between -9223372036854775808 and 674 + 605 605 +9223372036854775807 (inclusive)) 606 -)))| (% style="width:221px" %)integer607 -|( % style="width:360px" %)(((676 +)))|integer 677 +|((( 608 608 Short 679 + 609 609 (corresponds to XML Schema xs:short datatype; between -32768 and -32767 (inclusive)) 610 -)))|(% style="width:221px" %)integer 611 -|(% style="width:360px" %)Decimal 612 -(corresponds to XML Schema xs:decimal datatype; subset of real numbers that can be represented as decimals)|(% style="width:221px" %)number 613 -|(% style="width:360px" %)((( 681 +)))|integer 682 +|Decimal (corresponds to XML Schema xs:decimal datatype; subset of real numbers that can be represented as decimals)|number 683 +|((( 614 614 Float 685 + 615 615 (corresponds to XML Schema xs:float datatype; patterned after the IEEE single-precision 32-bit floating point type) 616 -)))| (% style="width:221px" %)number617 -|( % style="width:360px" %)(((687 +)))|number 688 +|((( 618 618 Double 690 + 619 619 (corresponds to XML Schema xs:double datatype; patterned after the IEEE double-precision 64-bit floating point type) 620 -)))| (% style="width:221px" %)number621 -|( % style="width:360px" %)(((692 +)))|number 693 +|((( 622 622 Boolean 695 + 623 623 (corresponds to the XML Schema xs:boolean datatype; support the mathematical concept of 697 + 624 624 binary-valued logic: {true, false}) 625 -)))| (% style="width:221px" %)boolean626 -|( % style="width:360px" %)(((699 +)))|boolean 700 +|((( 627 627 URI 702 + 628 628 (corresponds to the XML Schema xs:anyURI; absolute or relative Uniform Resource Identifier Reference) 629 -)))| (%style="width:221px" %)string630 -|( % style="width:360px" %)(((704 +)))|string 705 +|((( 631 631 Count 707 + 632 632 (an integer following a sequential pattern, increasing by 1 for each occurrence) 633 -)))| (% style="width:221px" %)integer634 -|( % style="width:360px" %)(((709 +)))|integer 710 +|((( 635 635 InclusiveValueRange 712 + 636 636 (decimal number within a closed interval, whose bounds are specified in the SDMX representation by the facets minValue and maxValue) 637 -)))| (% style="width:221px" %)number638 -|( % style="width:360px" %)(((714 +)))|number 715 +|((( 639 639 ExclusiveValueRange 717 + 640 640 (decimal number within an open interval, whose bounds are specified in the SDMX representation by the facets minValue and maxValue) 641 -)))| (% style="width:221px" %)number642 -|( % style="width:360px" %)(((719 +)))|number 720 +|((( 643 643 Incremental 722 + 644 644 (decimal number the increased by a specific interval (defined by the interval facet), which is typically enforced outside of the XML validation) 645 -)))| (% style="width:221px" %)number646 -|( % style="width:360px" %)(((724 +)))|number 725 +|((( 647 647 ObservationalTimePeriod 727 + 648 648 (superset of StandardTimePeriod and TimeRange) 649 -)))| (% style="width:221px" %)time650 -|( % style="width:360px" %)(((729 +)))|time 730 +|((( 651 651 StandardTimePeriod 732 + 652 652 (superset of BasicTimePeriod and ReportingTimePeriod) 653 -)))| (% style="width:221px" %)time654 -|( % style="width:360px" %)(((734 +)))|time 735 +|((( 655 655 BasicTimePeriod 737 + 656 656 (superset of GregorianTimePeriod and DateTime) 657 -)))| (% style="width:221px" %)date658 -|( % style="width:360px" %)(((739 +)))|date 740 +|((( 659 659 GregorianTimePeriod 742 + 660 660 (superset of GregorianYear, GregorianYearMonth, and GregorianDay) 661 -)))| (% style="width:221px" %)date662 -| (% style="width:360px" %)GregorianYear (YYYY)|(% style="width:221px" %)date663 -| (% style="width:360px" %)GregorianYearMonth / GregorianMonth (YYYY-MM)|(% style="width:221px" %)date664 -| (% style="width:360px" %)GregorianDay (YYYY-MM-DD)|(% style="width:221px" %)date665 -|( % style="width:360px" %)(((744 +)))|date 745 +|GregorianYear (YYYY)|date 746 +|GregorianYearMonth / GregorianMonth (YYYY-MM)|date 747 +|GregorianDay (YYYY-MM-DD)|date 748 +|((( 666 666 ReportingTimePeriod 750 + 667 667 (superset of RepostingYear, ReportingSemester, ReportingTrimester, ReportingQuarter, ReportingMonth, ReportingWeek, ReportingDay) 668 -)))| (% style="width:221px" %)time_period669 -|( % style="width:360px" %)(((752 +)))|time_period 753 +|((( 670 670 ReportingYear 755 + 671 671 (YYYY-A1 – 1 year period) 672 -)))| (% style="width:221px" %)time_period673 -|( % style="width:360px" %)(((757 +)))|time_period 758 +|((( 674 674 ReportingSemester 760 + 675 675 (YYYY-Ss – 6 month period) 676 -)))| (% style="width:221px" %)time_period677 -|( % style="width:360px" %)(((762 +)))|time_period 763 +|((( 678 678 ReportingTrimester 765 + 679 679 (YYYY-Tt – 4 month period) 680 -)))| (% style="width:221px" %)time_period681 -|( % style="width:360px" %)(((767 +)))|time_period 768 +|((( 682 682 ReportingQuarter 770 + 683 683 (YYYY-Qq – 3 month period) 684 -)))| (% style="width:221px" %)time_period685 -|( % style="width:360px" %)(((772 +)))|time_period 773 +|((( 686 686 ReportingMonth 775 + 687 687 (YYYY-Mmm – 1 month period) 688 -)))| (% style="width:221px" %)time_period689 -| (% style="width:360px" %)ReportingWeek|(% style="width:221px" %)time_period690 -| (%style="width:360px" %)(YYYY-Www – 7 day period; following ISO 8601 definition of a week in a year)|(%style="width:221px" %)691 -|( % style="width:360px" %)(((777 +)))|time_period 778 +|ReportingWeek|time_period 779 +| (YYYY-Www – 7 day period; following ISO 8601 definition of a week in a year)| 780 +|((( 692 692 ReportingDay 782 + 693 693 (YYYY-Dddd – 1 day period) 694 -)))| (% style="width:221px" %)time_period695 -|( % style="width:360px" %)(((784 +)))|time_period 785 +|((( 696 696 DateTime 787 + 697 697 (YYYY-MM-DDThh:mm:ss) 698 -)))| (% style="width:221px" %)date699 -|( % style="width:360px" %)(((789 +)))|date 790 +|((( 700 700 TimeRange 701 -(YYYY-MM-DD(Thh:mm:ss)?/) 702 -)))|(% style="width:221px" %)time 703 -|(% style="width:360px" %)((( 792 + 793 +(YYYY-MM-DD(Thh:mm:ss)?/<duration>) 794 +)))|time 795 +|((( 704 704 Month 705 -(MM; speicifies a month independent of a year; e.g. February is black history month in the United States) 706 -)))|(% style="width:221px" %)string 707 -|(% style="width:360px" %)((( 797 + 798 +(~-~-MM; speicifies a month independent of a year; e.g. February is black history month in the United States) 799 +)))|string 800 +|((( 708 708 MonthDay 709 -(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) 710 -)))|(% style="width:221px" %)string 711 -|(% style="width:360px" %)((( 802 + 803 +(~-~-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) 804 +)))|string 805 +|((( 712 712 Day 713 -(-DD; specifies a day independent of a month or year; e.g. the 15^^th^^ is payday) 714 -)))|(% style="width:221px" %)string 715 -|(% style="width:360px" %)((( 807 + 808 +(~-~--DD; specifies a day independent of a month or year; e.g. the 15^^th^^ is payday) 809 +)))|string 810 +|((( 716 716 Time 812 + 717 717 (hh:mm:ss; time independent of a date; e.g. coffee break is at 10:00 AM) 718 -)))| (%style="width:221px" %)string719 -|( % style="width:360px" %)(((814 +)))|string 815 +|((( 720 720 Duration 817 + 721 721 (corresponds to XML Schema xs:duration datatype) 722 -)))| (% style="width:221px" %)duration723 -| (% style="width:360px" %)XHTML|(% style="width:221px" %)Metadata type – not applicable724 -| (% style="width:360px" %)KeyValues|(% style="width:221px" %)Metadata type – not applicable725 -| (% style="width:360px" %)IdentifiableReference|(% style="width:221px" %)Metadata type – not applicable726 -| (% style="width:360px" %)DataSetReference|(% style="width:221px" %)Metadata type – not applicable819 +)))|duration 820 +|XHTML|Metadata type – not applicable 821 +|KeyValues|Metadata type – not applicable 822 +|IdentifiableReference|Metadata type – not applicable 823 +|DataSetReference|Metadata type – not applicable 727 727 728 - **Figure 14 – Mappings from SDMX data types to VTL Basic Scalar Types**825 +додол 729 729 827 +==== Figure 14 – Mappings from SDMX data types to VTL Basic Scalar Types ==== 828 + 730 730 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). 731 731 732 -=== 12.4.4 Mapping VTL basic scalar types to SDMX data types === 831 +1. 832 +11. 833 +111. Mapping VTL basic scalar types to SDMX data types 733 733 734 734 The following table describes the default conversion from the VTL basic scalar types to the SDMX data types . 735 735 736 -(% style="width:748.294px" %) 737 -|(% style="width:164px" %)((( 738 -VTL basic scalar type 739 -)))|(% style="width:304px" %)((( 837 +|((( 838 +VTL basic 839 + 840 +scalar type 841 +)))|((( 740 740 Default SDMX data type 741 -(BasicComponentDataType) 742 -)))|(% style="width:277px" %)Default output format 743 -|(% style="width:164px" %)String|(% style="width:304px" %)String|(% style="width:277px" %)Like XML (xs:string) 744 -|(% style="width:164px" %)Number|(% style="width:304px" %)Float|(% style="width:277px" %)Like XML (xs:float) 745 -|(% style="width:164px" %)Integer|(% style="width:304px" %)Integer|(% style="width:277px" %)Like XML (xs:int) 746 -|(% style="width:164px" %)Date|(% style="width:304px" %)DateTime|(% style="width:277px" %)YYYY-MM-DDT00:00:00Z 747 -|(% style="width:164px" %)Time|(% style="width:304px" %)StandardTimePeriod|(% style="width:277px" %)<date>/<date> (as defined above) 748 -|(% style="width:164px" %)time_period|(% style="width:304px" %)((( 843 + 844 +(BasicComponentDataType 845 + 846 +) 847 +)))|Default output format 848 +|String|String|Like XML (xs:string) 849 +|Number|Float|Like XML (xs:float) 850 +|Integer|Integer|Like XML (xs:int) 851 +|Date|DateTime|YYYY-MM-DDT00:00:00Z 852 +|Time|StandardTimePeriod|<date>/<date> (as defined above) 853 +|time_period|((( 749 749 ReportingTimePeriod 855 + 750 750 (StandardReportingPeriod) 751 -)))|( % style="width:277px" %)(((857 +)))|((( 752 752 YYYY-Pppp 859 + 753 753 (according to SDMX ) 754 754 ))) 755 -| (% style="width:164px" %)Duration|(% style="width:304px" %)Duration|(% style="width:277px" %)Like XML (xs:duration) PnYnMnDTnHnMnS756 -| (% style="width:164px" %)Boolean|(% style="width:304px" %)Boolean|(% style="width:277px" %)Like XML (xs:boolean) with the values "true" or "false"862 +|Duration|Duration|Like XML (xs:duration) PnYnMnDTnHnMnS 863 +|Boolean|Boolean|Like XML (xs:boolean) with the values "true" or "false" 757 757 758 - **Figure 14 – Mappings from SDMX data types to VTL Basic Scalar Types**865 +==== Figure 14 – Mappings from SDMX data types to VTL Basic Scalar Types ==== 759 759 760 -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).867 +In case a different default conversion is desired, it can be achieved through the CustomTypeScheme and CustomType artefacts (see also the section 761 761 869 +Transformations and Expressions of the SDMX information model). 870 + 762 762 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. 763 763 764 -(% style="width:717.294px" %) 765 -|(% colspan="2" style="width:714px" %)VTL special characters for the formatting masks 766 -|(% colspan="2" style="width:714px" %) 767 -|(% colspan="2" style="width:714px" %)Number 768 -|(% style="width:122px" %)D|(% style="width:591px" %)one numeric digit (if the scientific notation is adopted, D is only for the mantissa) 769 -|(% style="width:122px" %)E|(% style="width:591px" %)one numeric digit (for the exponent of the scientific notation) 770 -|(% style="width:122px" %). (dot)|(% style="width:591px" %)possible separator between the integer and the decimal parts. 771 -|(% style="width:122px" %), (comma)|(% style="width:591px" %)possible separator between the integer and the decimal parts. 772 -|(% style="width:122px" %) |(% style="width:591px" %) 773 -|(% colspan="2" style="width:714px" %)Time and duration 774 -|(% style="width:122px" %)C|(% style="width:591px" %)century 775 -|(% style="width:122px" %)Y|(% style="width:591px" %)year 776 -|(% style="width:122px" %)S|(% style="width:591px" %)semester 777 -|(% style="width:122px" %)Q|(% style="width:591px" %)quarter 778 -|(% style="width:122px" %)M|(% style="width:591px" %)month 779 -|(% style="width:122px" %)W|(% style="width:591px" %)week 780 -|(% style="width:122px" %)D|(% style="width:591px" %)day 781 -|(% style="width:122px" %)h|(% style="width:591px" %)hour digit (by default on 24 hours) 782 -|(% style="width:122px" %)M|(% style="width:591px" %)minute 783 -|(% style="width:122px" %)S|(% style="width:591px" %)second 784 -|(% style="width:122px" %)D|(% style="width:591px" %)decimal of second 785 -|(% style="width:122px" %)P|(% style="width:591px" %)period indicator (representation in one digit for the duration) 786 -|(% style="width:122px" %)P|(% style="width:591px" %)number of the periods specified in the period indicator 787 -|(% style="width:122px" %)AM/PM|(% style="width:591px" %)indicator of AM / PM (e.g. am/pm for "am" or "pm") 788 -|(% style="width:122px" %)MONTH|(% style="width:591px" %)uppercase textual representation of the month (e.g., JANUARY for January) 789 -|(% style="width:122px" %)DAY|(% style="width:591px" %)uppercase textual representation of the day (e.g., MONDAY for Monday) 790 -|(% style="width:122px" %)Month|(% style="width:591px" %)lowercase textual representation of the month (e.g., january) 791 -|(% style="width:122px" %)Day|(% style="width:591px" %)lowercase textual representation of the month (e.g., monday) 792 -|(% style="width:122px" %)Month|(% style="width:591px" %)First character uppercase, then lowercase textual representation of the month (e.g., January) 793 -|(% style="width:122px" %)Day|(% style="width:591px" %)First character uppercase, then lowercase textual representation of the day using (e.g. Monday) 794 -|(% style="width:122px" %) |(% style="width:591px" %) 795 -|(% colspan="2" style="width:714px" %)String 796 -|(% style="width:122px" %)X|(% style="width:591px" %)any string character 797 -|(% style="width:122px" %)Z|(% style="width:591px" %)any string character from "A" to "z" 798 -|(% style="width:122px" %)9|(% style="width:591px" %)any string character from "0" to "9" 799 -|(% style="width:122px" %) |(% style="width:591px" %) 800 -|(% colspan="2" style="width:714px" %)Boolean 801 -|(% style="width:122px" %)B|(% style="width:591px" %)Boolean using "true" for True and "false" for False 802 -|(% style="width:122px" %)1|(% style="width:591px" %)Boolean using "1" for True and "0" for False 803 -|(% style="width:122px" %)0|(% style="width:591px" %)Boolean using "0" for True and "1" for False 804 -|(% style="width:122px" %) |(% style="width:591px" %) 805 -|(% colspan="2" style="width:714px" %)Other qualifiers 806 -|(% style="width:122px" %)*|(% style="width:591px" %)an arbitrary number of digits (of the preceding type) 807 -|(% style="width:122px" %)+|(% style="width:591px" %)at least one digit (of the preceding type) 808 -|(% style="width:122px" %)( )|(% style="width:591px" %)optional digits (specified within the brackets) 809 -|(% style="width:122px" %)\|(% style="width:591px" %)prefix for the special characters that must appear in the mask 810 -|(% style="width:122px" %)N|(% style="width:591px" %)fixed number of digits used in the preceding textual representation of the month or the day 811 -|(% style="width:122px" %) |(% style="width:591px" %) 873 +|(% colspan="2" %)VTL special characters for the formatting masks 874 +|(% colspan="2" %) 875 +|(% colspan="2" %)Number 876 +|D|one numeric digit (if the scientific notation is adopted, D is only for the mantissa) 877 +|E|one numeric digit (for the exponent of the scientific notation) 878 +|. (dot)|possible separator between the integer and the decimal parts. 879 +|, (comma)|possible separator between the integer and the decimal parts. 880 +| | 881 +|(% colspan="2" %)Time and duration 882 +|C|century 883 +|Y|year 884 +|S|semester 885 +|Q|quarter 886 +|M|month 887 +|W|week 888 +|D|day 889 +|h|hour digit (by default on 24 hours) 890 +|M|minute 891 +|S|second 892 +|D|decimal of second 893 +|P|period indicator (representation in one digit for the duration) 894 +|P|number of the periods specified in the period indicator 895 +|AM/PM|indicator of AM / PM (e.g. am/pm for "am" or "pm") 896 +|MONTH|uppercase textual representation of the month (e.g., JANUARY for January) 897 +|DAY|uppercase textual representation of the day (e.g., MONDAY for Monday) 898 +|Month|lowercase textual representation of the month (e.g., january) 899 +|Day|lowercase textual representation of the month (e.g., monday) 900 +|Month|First character uppercase, then lowercase textual representation of the month (e.g., January) 901 +|Day|First character uppercase, then lowercase textual representation of the day using (e.g. Monday) 902 +| | 903 +|(% colspan="2" %)String 904 +|X|any string character 905 +|Z|any string character from "A" to "z" 906 +|9|any string character from "0" to "9" 907 +| | 908 +|(% colspan="2" %)Boolean 909 +|B|Boolean using "true" for True and "false" for False 910 +|1|Boolean using "1" for True and "0" for False 911 +|0|Boolean using "0" for True and "1" for False 912 +| | 913 +|(% colspan="2" %)Other qualifiers 914 +|*|an arbitrary number of digits (of the preceding type) 915 +|+|at least one digit (of the preceding type) 916 +|( )|optional digits (specified within the brackets) 917 +|\|prefix for the special characters that must appear in the mask 918 +|N|fixed number of digits used in the preceding textual representation of the month or the day 919 +| | 812 812 813 813 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{{footnote}}The representation given in the DSD should obviously be compatible with the VTL data type.{{/footnote}}. 814 814 815 -=== 12.4.3 Null Values === 923 +1. 924 +11. 925 +111. Null Values 816 816 817 817 In the conversions from SDMX to VTL it is assumed by default that a missing value in SDMX becomes a NULL in VTL. After the conversion, the NULLs can be manipulated through the proper VTL operators. 818 818 819 819 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. 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. 820 820 821 -=== 12.4.5 Format of the literals used in VTL Transformations === 931 +1. 932 +11. 933 +111. Format of the literals used in VTL Transformations 822 822 823 823 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. 824 824 ... ... @@ -832,6 +832,38 @@ 832 832 833 833 In case a literal is operand of a VTL Cast operation, the format specified in the Cast overrides all the possible otherwise specified formats. 834 834 947 + 835 835 ---- 836 836 950 +[[~[1~]>>path:#_ftnref1]] The Validation and Transformation Language is a standard language designed and published under the SDMX initiative. VTL is described in the VTL User and Reference Guides available on the SDMX website [[https:~~/~~/sdmx.org>>url:https://sdmx.org/]][[.>>url:https://sdmx.org/]] 951 + 952 +[[~[2~]>>path:#_ftnref2]] In this chapter, in order to distinguish VTL and SDMX model artefacts, the VTL ones are written in the Arial font while the SDMX ones in Courier New 953 + 954 +[[~[3~]>>path:#_ftnref3]] See also the section "VTL-DL Rulesets" in the VTL Reference Manual. 955 + 956 +[[~[4~]>>path:#_ftnref4]] The VTLMappings are used also for User Defined Operators (UDO). Although UDOs are envisaged to be defined on generic operands, so that the specific artefacts to be manipulated are passed as parameters at their invocation, it is also possible that an UDO invokes directly some specific SDMX artefacts. These SDMX artefacts have to be mapped to the corresponding aliases used in the definition of the UDO through the VtlMappingScheme and VtlMapping classes as well. 957 + 958 +[[~[5~]>>path:#_ftnref5]] For a complete description of the structure of the URN see the SDMX 2.1 Standards - Section 5 - Registry Specifications, paragraph 6.2.2 ("Universal Resource Name (URN)"). 959 + 960 +[[~[6~]>>path:#_ftnref6]] The container-object-id can repeat and may not be present. 961 + 962 +[[~[7~]>>path:#_ftnref7]] i.e., the artefact belongs to a maintainable class 963 + 964 +[[~[8~]>>path:#_ftnref8]] Since these references to SDMX objects include non-permitted characters as per the VTL ID notation, they need to be included between single quotes, according to the VTL rules for irregular names. 965 + 966 +[[~[9~]>>path:#_ftnref9]] For the syntax of the VTL operators see the VTL Reference Manual 967 + 968 +[[~[10~]>>path:#_ftnref10]] In case the invoked artefact is a VTL component, which can be invoked only within the invocation of a VTL data set (SDMX Dataflow), the specific SDMX class-name (e.g. Dimension, TimeDimension, Measure or DataAttribute) can be deduced from the data structure of the SDMX Dataflow, which the component belongs to. 969 + 970 +[[~[11~]>>path:#_ftnref11]] 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) 971 + 972 +[[~[12~]>>path:#_ftnref12]] Single quotes are needed because this reference is not a VTL regular name. ^^19^^ Single quotes are not needed in this case because CL_FREQ is a VTL regular name. 973 + 974 +[[~[13~]>>path:#_ftnref13]] The result DFR(1.0.0) is be equal to DF1(1.0.0) save that the component SECTOR is called SEC 975 + 976 +[[~[14~]>>path:#_ftnref14]] Rulesets of this kind cannot be reused when the referenced Concept has a different representation. 977 + 978 +[[~[15~]>>path:#_ftnref15]] See also the section "VTL-DL Rulesets" in the VTL Reference Manual. 979 + 980 + 837 837 {{putFootnotes/}}
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- SKMS.Methodology.Code.MethodologyClass[0]
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