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Advances in Geographic Data Science: Open Data and Systems

alexsingleton
January 31, 2014

Advances in Geographic Data Science: Open Data and Systems

Talk given at the EEO-AGI seminar series at the University of Edinburgh 31/1/14

alexsingleton

January 31, 2014
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  1. ! www.alex-singleton.com! @alexsingleton! Advances in Geographic Data Science: Open Data

    and Systems Alex Singleton Reader Geographic Information Science Department of Geography and Planning
  2. Overview • Open “Big” Data • Geographic Data Science (Systems)

    • CO2 Emissions and the School Commute • 2011 Census Open Atlas • Future Prospects
  3. Geographic Data Science • Intersection of Geographic Information Science, Spatial

    Analysis, Applied Geocomputation and visualisation. • Couples burgeoning new and dynamic data sources with advanced quantitative and computational methodology to advance debates around problems of global social and economic importance.
  4. Open Data Open data is information that is available for

    anyone to use, for any purpose, at no cost. http://theodi.org/guides/what-open-data http://www.flickr.com/photos/mayhem/3899818862/
  5. School Data University Data SECURE SANITISED Singleton, A. (2010). The

    Geodemographics of Educational Progression and their Implications for Widening Participation in Higher Education. Environment and Planning A, 42(11):2560–2580.!
  6. Open Data • Open data has to have a licence

    that says it is open data. Without a licence, the data can’t be reused. The licence might also say: • that people who use the data must credit whoever is publishing it (this is called attribution) • that people who mix the data with other data have to also release the results as open data (this is called share-alike) http://theodi.org/guides/what-open-data
  7. Census 2001 Census 2011 Release 2003 Admin. Data Census 2022?

    Social Media.Data Aggregate Decades Individual Seconds Open! Data Closed! Data Business Data ?! Data
  8. Grand Challenges • Of what are these new data representative?

    • What should be captured (or not) and how? • What are the ethical considerations - privacy / surveillance? • What new problems can be explored through imaginative use of data and software?
  9. CO2 Emissions • ~7.5 million school trips • 2007-2012 -

    Usual Travel Mode • Data Department for Education; Department for Transport (DVLA) • Suite of open source software Singleton, A. (2013) A GIS Approach to Modelling CO2 Emissions Associated with the Pupil-School Commute. International Journal of Geographical Information Science, 28(2):256–273.
  10. CO2 Emissions • ~7.5 million school trips • 2007-2012 -

    Usual Travel Mode • Data Department for Education; Department for Transport (DVLA) • Suite of open source software Singleton, A. (2013) A GIS Approach to Modelling CO2 Emissions Associated with the Pupil-School Commute. International Journal of Geographical Information Science, 28(2):256–273.
  11. CO2 Emissions • d distance • p pupil • i

    pupil home postcode • j school postcode • e CO2g/km • t transport mode • g location k p = 2 d i p j p t p ( )e t p g p ( )w t p ( ) ( )
  12. Transport Mode Average CO2g / km Taxi 150.3 Bus (London)

    85.7 Bus (Non London) 184.3 Coach 30.0 Light Rail - Average 71 London (DLR) 68.3 Birmingham / Midlands 70.5 Newcastle 103.0 Croydon 44.3 Manchester 39.5 Nottingham # Sheffield 96.8 National Rail 53.4 London Underground 73.1 Cycling 8.3 Walking 11.4 (Coley 2002, DEFRA 2011, Tranter 2012)
  13. Data Processing OpenStreetMap Meridian2 Roads / Paths .osm XML Light

    Rail / Tube railway=light_rail railway=subway Routino QGIS Railways Cleaning 1) Single lines 2) Nodes join 3) Nodes at stations QGIS
  14. 0.00 0.25 0.50 0.75 0−0.5km 0.5−1km 1−1.5km 1.5−2km 2−2.5km 2.5−3km

    3−3.5km 3.5−4km 4−4.5km 4.5−5km 5−5.5km 5.5−6km 6−6.5km 6.5−7km 7−7.5km 7.5−8km 8−8.5km 8.5−9km 9−9.5km 9.5−10km 10−10.5km 10.5−11km 11−11.5km 11.5−12km 12−12.5km 12.5−13km 13−13.5km 13.5−14km 14−14.5km 14.5−15km 15−15.5km 15.5−16km 16−16.5km 16.5−17km 17−17.5km 17.5−18km 18−18.5km 18.5−19km 19−19.5km 19.5−20km > 20km Distance Percentage Mode BUS CAR NON TRA
  15. 2010 Census of Japan Open Atlas Alex Singleton [www.alex-singleton.com] Chris

    Brunsdon, Tomoki Nakaya, Keiji Yano Version 1.0 ! 2011 Census Open Atlas Alex Singleton (www.alex-singleton.com) Version 2.0
  16. 1) Download and process all OA data EW 2) Download

    OA and Ward boundaries 3) Render maps and legends for LAD 4) Write a latex file pdfcrop PDFTK
  17. Version 2 Scale Bars Legend label List of Figures Place

    label suppress Wales only variables
  18. Savings • A manual map might typically take 5 minutes

    to create • 134,567 maps • 467.2 days (no breaks!) • 35 hour working week for 46 weeks of a year (6 weeks holiday) - 6.9 years. • Median wages of a GIS Technician at £20,030 then the “cost” of all these maps would be 6.9 X £20,030 = £138,207.
  19. Some Speculation… • Big Data is not a new phenomenon:

    disjunction between available data and ability process it • New methodology will emerge • Great Opportunity: Should begin with a problem to solve not a technology or infrastructure D ata
  20. Some Speculation… The ability to code relates to basic programming

    and database skills that enable students to manipulate large and small geographic data sets, and to analyse them in automated and transparent ways. Although it might seem odd for a geographer to want to learn programming languages, we only have to look at geography curriculums from the 1980s to realise that these skills used to be taught. For example, it wouldn’t have been unusual for an undergraduate geographer to learn how to programme a basic statistical model (for example, regression) from base principles in Fortran (a programming language popular at the time) as part of a methods course. But during the 1990s, the popularisation of graphical user interfaces in software design enabled many statistical, spatial analysis and mapping operations to be wrapped up within visual and menu-driven interfaces, which were designed to lower the barriers of entry for users of these techniques. Gradually, much GIS teaching has transformed into learning how these software package, they increasingly look like advertisements for computer scientists, with expected skills and experience that wouldn’t traditionally be part of an undergraduate geography curriculum. Many of the problems that GIS set out to address can now be addressed with mainstream software or shared online services that are, as such, much easier to use. If I want to determine the most efficient route between two locations, a simple website query can give a response within seconds, accounting for live traffic-volume data. If I want to view the distribution of a census attribute over a given area, there are multiple free services that offer street-level mapping. Such tasks used to be far more complex, involving specialist software and technical skills. There are now far fewer job advertisements for GIS technicians than there were ten years ago. Much traditional GIS-type analysis is now sufficiently non-technical that it requires little specialist skill, or has been automated through software services, with a subscription replacing the employment of a technician. The market has moved on. Geographers shouldn’t become computer scientists; however, we need to reassert our role in the development and critique of existing and new GIS. For example, we need to ask questions such as which type of geographic representation might be most appropriate for a given dataset. Today’s geographers may be able to talk in general terms about such a question, but they need to be able to provide a more effective answer that encapsulates the technologies that are used for display. Understanding what is and isn’t possible in technical terms is as important as understanding the underlying cartographic principles. Such insights will be more available to a geographer who has learnt how to code. Within the area of GIS, technological change has accelerated at an alarming rate in the past decade and geography curriculums need to ensure that they embrace these developments. This does, however, come with challenges. Academics must ensure that they are up to date with market developments and also that there’s sufficient capacity within the system to make up-skilling possible. Prospective geography undergraduates should also consider how the university curriculums have adapted to modern market conditions and whether they offer the opportunity to learn how to code. software systems operate, albeit within a framework of geographic information science (GISc) concerned with the social and ethical considerations of building representations from geographic data. Some Masters degrees in GISc still require students to code, but few undergraduate courses do so. The good news is that it’s never been more exciting to be a geographer. Huge volumes of spatial data about how the world looks and functions are being collected and disseminated. However, translating such data safely into useful information is a complex task. During the past ten years, there has been an explosion in new platforms through which geographic data can be processed and visualised. For example, the advent of services such as Google Maps has made it easier for people to create geographical representations online. However, both the analysis of large volumes of data and the use of these new methods of representation or analysis do require some level of basic programming ability. Furthermore, many of these developments haven’t been led by geographers, and there’s a real danger that our skill set will be seen as superfluous to these activities in the future without some level of intervention. Indeed, it’s a sobering experience to look through the pages of job advertisements for GIS-type roles in the UK and internationally. Whereas these might once have required knowledge of a particular I N M Y O P I N I O N, a geography curriculum should require students to learn how to code, ensuring that they’re equipped for a changed job market that’s increasingly detached from geographic information systems (GIS) as they were originally conceived. January 2014 | 77 Learning to code A L E X S I N G L E T O N is a lecturer in geographic information science at the University of Liverpool P O I N T O F V I E W January 2014 | UK £4.50 www.geographical.co.uk M A G A Z I N E O F T H E R O YA L G E O G R A P H I C A L S O C I E T Y ( W I T H I B G ) Geographical HOW INDUSTRIAL FISHING IS EMPTYING THE SEAS AROUND THAILAND Can carbon capture and storage save the world? Deep disposal Manchester is my orchard Turning Moss Side's unwanted fruit into a thriving cider business Net loss "TDFOTJPO*TMBOEq/FQBMq"VSFM4UFJO PLUS www.geographical.co.uk Education