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Eurostat Web activity evidence to increase timeliness of official statistics IAOS 2014 8 – 10 October.

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Presentation on theme: "Eurostat Web activity evidence to increase timeliness of official statistics IAOS 2014 8 – 10 October."— Presentation transcript:

1 Eurostat Web activity evidence to increase timeliness of official statistics IAOS 2014 8 – 10 October

2 Eurostat My definition of big data Data deluge Larger, faster, more (a.k.a. Volume, Velocity, Variety) Everything is data Text, sound, images, video Analytics Predictive analytics Ex: Google translate, voice recognition, suggestions systems, health applications The new data product by excellence Official stat: chances of getting a new job An emergent market

3 Eurostat ESS Big Data action plan Scheveningen memorandum Action plan adopted by European Statistical System Committee Strategy Pilots, three time horizons roadmap, review as needed Areas Policy, Communication, Big data sources, Applications / pilots, Methods, Quality, IT infrastructure, Skills, Experience sharing, Legislation, Governance http://www.cros-portal.eu/content/ess-big-data- action-plan-and-roadmap-10

4 Eurostat Past experiences 2005: Association between web activity and unemployment identified 2006: Google Trends 2008: Google Flu Trends (GFT) 2009: GFT underestimated official figures 1 st revision of GFT model 2013: GFT overestimated flu peak values 2 nd revision of GFT model 2014: Backlash against big data

5 Eurostat Data Source: Google Trends (www.google.com/trends).

6 Eurostat Weekly influenza-like illness (ILI) surveillance and Google Flu Trends (GFT) search query estimates, June 2003–March 2013 Olson DR, Konty KJ, Paladini M, Viboud C, et al. (2013) Reassessing Google Flu Trends Data for Detection of Seasonal and Pandemic Influenza: A Comparative Epidemiological Study at Three Geographic Scales. PLoS Comput Biol 9(10) License: Creative Commons CC0 public domain dedication

7 Eurostat Weekly influenza-like illness (ILI) surveillance and Google Flu Trends (GFT) search query estimates, June 2003–March 2013 Olson DR, Konty KJ, Paladini M, Viboud C, et al. (2013) Reassessing Google Flu Trends Data for Detection of Seasonal and Pandemic Influenza: A Comparative Epidemiological Study at Three Geographic Scales. PLoS Comput Biol 9(10) License: Creative Commons CC0 public domain dedication

8 Eurostat Weekly influenza-like illness (ILI) surveillance and Google Flu Trends (GFT) search query estimates, June 2003–March 2013 Olson DR, Konty KJ, Paladini M, Viboud C, et al. (2013) Reassessing Google Flu Trends Data for Detection of Seasonal and Pandemic Influenza: A Comparative Epidemiological Study at Three Geographic Scales. PLoS Comput Biol 9(10) License: Creative Commons CC0 public domain dedication

9 Eurostat Weekly influenza-like illness (ILI) surveillance and Google Flu Trends (GFT) search query estimates, June 2003–March 2013 Olson DR, Konty KJ, Paladini M, Viboud C, et al. (2013) Reassessing Google Flu Trends Data for Detection of Seasonal and Pandemic Influenza: A Comparative Epidemiological Study at Three Geographic Scales. PLoS Comput Biol 9(10) License: Creative Commons CC0 public domain dedication

10 Eurostat Source: Financial Times Magazine (2014).

11 Eurostat Lessons from GFT Premature release of statistical product can harm its reputation Avoid big data hubris Google search algorithms frequent changes impacts validity of models We need transparency and replicability GFT search terms unknown GT is based on a sample which sampling methodology is unknown

12 Eurostat Other sources of web activity Wikipedia page views Flu Twitter International and internal migration flows Possibly other Visits to particular websites

13 Eurostat How to introduce web activity data in official flash estimates? Launch a larger scale balanced study Negative results normally are not published Purpose: guide decision on investment

14 Eurostat How to introduce web activity data in official flash estimates? Diversification and assessment of the web activity data sources NSI lack control of the source Black box Inability to guarantee that there was no manipulation Breaks in series Lack of continuity Diversify the sources Revision of prediction models Accreditation and certification

15 Eurostat How to introduce web activity data in official flash estimates? Integration of web activity data with traditional official statistics sources Official statistics should not simply reproduce what others can do, but instead do it making use of its specific comparative advantages We are the original producers, we know its details Use more detail than what is published Traditional methods (surveys)

16 Eurostat How to introduce web activity data in official flash estimates? Research on relation between web activity and the phenomena being predicted Remember lesson from GFT Do not confuse web activity with the phenomenon itself

17 Eurostat How to introduce web activity data in official flash estimates? Joint effort on the development of appropriate prediction models Learn from each other Transparency International comparability


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