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The Future of GeoComputation Ian Turton Centre for Computational Geography University of Leeds
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Summary People Data –Space –Time Computing Methods –Explorative –Explanative –Exploitative
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The CCG Some of them anyway
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Mountains of Data
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Swamps of Data
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We know what you spend...
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…where you spend it...
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…who you talk to...
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…where you live... What your neighbours are like, what your house is
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...Crime data and... crime type crime location insurance data
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...Health data environmental data socio-economic data admissions data
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The Cray T3D and T3E High Performance Computing Time machines Just big enough for modern geographical problems
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The Internet GIS and the Web –Public participation in planning Distributed Computing –“many hands make light work”
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What can we do with all this data and computer power? Explore it Explain it Exploit it
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Exploration Given some (large amount of) data find anything that is “interesting” in that data
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Pattern Analysis GAM GEM Automated analysis Easy to understand output No statistical assumptions crime, health, education...
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Spatial Search Agents If we don’t know where to look Look every where? Or let something else do the looking?
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Urban Social Structure Glasgow and London
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Fourier-Mellin space Glasgow and London
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Rezoning Census variables and areas Sales areas Voting districts
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Explanation Having found something “interesting” in a data set Attempt to explain it or model it
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Spatial Interaction Models Migration flows Commuting flows –GB Ward to Wards flows (10,000) Phone flows –(20+ Million) EU Flows
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Cellular Automata Simple CA Life Complex multi-state CA forest fires Pedestrian or traffic movements
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Neural Nets Black Box Non-linear parameter free estimations Used any where a “normal” model could be used.
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Fuzzy Logic Allows the introduction of imprecision to model More computation gives better answers
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Agents on a Ring Catherine Dibble Agents can move along the lines GROW MAKE SERV INFO Generate reasonable patterns
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Exploitation Having found something of interest and explained it (in some way) make use of this knowledge
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Spatial Location Optimisation Based on spatial interaction model Run the model 1000’s of times In this case 10,000 zones
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Flood Forecasting How likely is it to flood in the next 6 hours? Neural nets Fuzzy Logic
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Sensitivity Analysis on Models Run the model 1000’s of times with perturbations to inputs Get out real error estimates Population Models Flood Models Drainage Models
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Conclusions More data –better data More computing –better computing More models –better models
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