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Published byScarlett Burns Modified over 9 years ago
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United Nations Economic Commission for Europe Statistical Division High-Level Group Achievements and Plans Steven Vale UNECE steven.vale@unece.org
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The story so far CSPA
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New in 2014
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Implementation of the CSPA
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Services built 1. Seasonal adjustment – France, Australia, New Zealand 2. Confidentiality on the fly – Canada, Australia 3. SVG generator – OECD 4. SDMX transform – OECD 5. Sample selection – Netherlands 6. Linear error localisation – Netherlands 7. Linear rule checking – Netherlands 8. Error correction – Italy
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Architecture Working Group Catalogue team **Just released**
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Big Data
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What does Big Data mean for official statistics? Priorities: Partnerships – Guidelines Privacy – Guidelines Quality – Guidelines Skills – Survey Skills profile IT / methodological issues - Sandbox
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Sandbox: Aims Validate existing statistical standards / methods for use with Big Data Big Data software tools – which ones are most useful for statistical organisations? Feasibility of remote access and processing in the context of statistical production? Develop an international collaboration community on the use of Big Data for statistics?
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7 Sandbox Experiment Teams 75 Individuals from 25 countries / organisations 3 Task Teams Executive Board, Modernisation Committees 1 Project Manager 2 Coordinators Partners
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Results
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Some key outputs Papers on “Machine learning” in statistical organisations Marketing official statistics Intellectual property Risk and change management Generic Activity Model for Statistical Organisations (GAMSO)
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GAMSO **Just released**
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Big Data More sandbox experiments More data E.g. UNSD Comtrade Future of the sandbox approach? Challenge from the High-Level Group: Produce and release a set of internationally comparable statistics from one or more Big Data sources
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CSPA Implementation Specify together, develop individually Catalogue release Sustainable governance and support mechanisms More CSPA services Strategic investment plan Sprint, Canberra, 16-20 March
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Quality Management / Metadata Management Specify Needs DesignBuildCollectProcessAnalyseDisseminate 1.1 Identify needs 1.2 Consult & confirm needs 1.3 Establish output objectives 1.5 Check data availability 1.6 Prepare business case 2.1 Design outputs 2.4 Design frame & sample 2.3 Design data collection 2.5 Design processing & analysis 2.6 Design production systems & workflow 3.1 Build data collection instrument 3.2 Build or enhance process components 3.4 Configure workflows 3.5 Test production system 3.7 Finalize production system 4.1 Create frame & select sample 4.2 Set up collection 4.3 Run collection 4.4 Finalize collection 5.1 Integrate data 5.2 Classify & code 5.3 Review & validate 5.5 Derive new variables & units 5.7 Calculate aggregates 6.1 Prepare draft outputs 6.2 Validate outputs 6.3 Interpret & explain outputs 6.4 Apply disclosure control 6.5 Finalize outputs 7.1 Update output systems 7.2 Produce dissemination products 7.3 Manage release of dissemination products 7.5 Manage user support 7.4 Promote dissemination products 5.6 Calculate weights 1.4 Identify concepts Evaluate 8.1 Gather evaluation inputs 8.2 Conduct evaluation 8.3 Agree an action plan 5.4 Edit & impute 3.6 Test statistical business process 5.8 Finalize data files 2.2 Design variable descriptions 3.3 Build or enhance dissemination components 2014 20152016 2017 2020?
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Other forthcoming events 9 March: Workshop on Big Data 15-17 April: Workshop on Modern- isation of Statistical Production 27-29 April: Workshop on Statistical Communication 29 April – 1 May: Workshop on Statistical Data Collection 5-7 May: Workshop on Standards-based Modernisation
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Get involved! Anyone is welcome to contribute! Contact: support.stat@unece.orgsupport.stat@unece.org More Information HLG Wiki: www1.unece.org/stat/platform/display/hlgbas LinkedIn group: “Modernising official statistics”
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