Integrating Official Statistics and Geospatial Information : Issues and Challenges.

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Presentation transcript:

Integrating Official Statistics and Geospatial Information : Issues and Challenges

Location Information Framework Location information at address level Aggregated to suburb or postcode Aggregated to Local Government area or higher Analysis and aggregation across geographies Geocoded unit level data 25 Smith St = x,y: , Source: Ordnance Survey International

Mapping layers; Connecting Information Source: Ordnance Survey International

Two Sources of Information Two communities (Official Statistics and Geospatial Information) operating on different analytical schemes and data structures, with minimal overlap; Distinct culture, languages and practices; Comfortable as distinct professional communities; But now compelled by emerging trends to look for the common ground. What is the Common Ground? How to get there??

Polygons as Nuclei in Mapping Data Structure But they are not the Basic Unit

Hierarchical Data Structure : Location as Basic Unit of Observation Cadastral property parcelsAddress / Geocode 25 Smith St, Town Z x,y: ,

Polygons Representing a Unit or Groupings of Units Mesh BlocksBlock Face

Higher Level Aggregations Local Government AreasCensus Districts/Post codes

Users demand increasing precision. What is the smallest spatial unit possible?? area of interestintersection result From Polygons to Points of Relevance (POR)

area of interestintersection result Smaller Polygons, More Precise Data Confidentiality the key constraint But users demand (and will supply) POR data

From Polygons to Point-Based Information Points likely to complement Polygons as the organizing framework for data integration, providing location-specific Information; The dynamic movement from Point to Point will pull out packets of Point-of-Relevance information on a string; Point-based information will be able to facilitate the convergence of information from multiple sources for a particular location; Points identified by Geocodes or Addresses.

Line Trajectory of Tropical Cyclone Yasi

Matrix: Data Structure for Statistics

Unit Observation in Statistical Collection Individual entity as basic data unit (person, household, housing unit, enterprise, community, country); ‘Location’ information of limited interest or focus; Data Matrix structure designed for statistical computations, but not for spatial analysis; But individual entities can be LINKED through Geocodes

Building Location-Based Data Structure No consistent Geocode to link statistical data to Location; Many countries working on National Address Management Framework to define an unique geocode data structure; Urgently need location-based data management practices with multiple databases linked through geocode; Statistical-Spatial Metadata Interoperability, Integrating SDMX/DDI (statistics) with ISO-19115; Need enabling policies and protocols.

Lessons Learnt from Spatial Data Integration Project, Australia Pilot project Integrating statistical population data with geographic information. Unit level geocoded (address) data integrated with unit level social data. A number of Implementation Problems: ●Data Formats; ●Coherence in Geocoding, ●Integration of Multiple Data Sources.

Location Analytics: Pulling the Information Together Greater, better use of information at specific location helps promote further integration; Confidentiality a major issue. Countries need to define clear boundaries. Crowd Sourcing, VGI and mobile device will push this boundary; Location Analytics provide location-based evidence to solve problems and gain insights; Many organizations actively developing Location Analytics.

Migration Analytics

An Action Agenda for Information Integration Information integration will continue to evolve at a fast pace, pushed by commercial interest and user demand Need the United Nations to facilitate collaboration of the two communities globally and nationally in: ●the promotion and standardization of Geocoding process ●the development of data management practices enhancing interface of location-based datasets from multiple sources ●the development of Location Analytics ●the promotion and sharing of best practices

THANK YOU