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CROWDSOURCING AND GI

                       JAVIER MORALES
AGENDA
CROWDSOURCING AND SPATIAL DATA INFRASTRUCTURES

   Background

   Crowdsourcing Principles

   Examples

   Conclusions




                                                                                           © Manuel Ramos



                                                 © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 2
BACKGROUND
THE ROLE OF GI

   Geographic information (GI) was for generations produced and
   consumed by professionals

   Societal processes
    land transfer,
    planning and development,
    risk management
    …
   that affect organisations and individuals.

   Trend to develop mechanisms to bring GI closer to non-professional
   users




                                                © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 3
BACKGROUND
MODERN TOOLS

   Web 2.0
     high interactivity,
     sharing and collaboration,
     Interoperability, and
     real-time user-generated content

   Web 2.0 apps
     social networking,
     blogging,
     wikis,
     video sharing, and
     Mashups




                                         © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 4
BACKGROUND
WEB 2.0

                        The users’ role has changed
    from looking for and retrieving content  to active participation




                                    © www.techscreens.com



           everyone contributes to the common knowledge
                   of the group they interact with

                 Wikipedia, YouTube, Flickr, Wikimedia


                                              © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 5
CROWDSOURCING
WHY?



   Organisations today have to operate in information-rich environments

     They can no longer afford to rely entirely on their own ideas
     They cannot bet their success to a single product to the market



   Traditional development which largely focused on

     intra-organisational skills,
     closed off from outside ideas and technologies

    is becoming obsolete




                                            © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 6
CROWD-WHAT?




   Crowdsourcing

    is the act of taking a job traditionally performed by a designated
    agent (usually an employee) and outsourcing it to an undefined,
       generally large group of people in the form of an open call.

                                                                            Jeff Howe




                                          © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 7
CROW-WHAT?


   The crowdsourcing approach

       a recognised entity posts a problem online
       a large number of individuals reacts
       they provide a small part of the solution to the problem
       solutions offered are exhaustive and not disjoint


   This approach is popular because

     web-based social technology makes it feasible & affordable to collect
      data using groups of individuals
     such data is often more accurate indicator of current conditions in the
      real world than what can be obtained from data stored in databases




                                              © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 8
CROWDSOURCING PRINCIPLES


1.   Formulate the problem properly
      Scope & purpose

2.   State deliverables concretely (quality)
      let the crowd know exactly what is expected from them
      leave space for their creativity

3.   Connect with the right crowd
      diversity (the question is answered from multiple points of view)
      scientists or specialists and a significant number of hobbyists
       with knowledge in the problem domain

4.   Deploy the appropriate crowd management scheme
      moderate discussion boards
      post provocative challenges & publish milestones

                                             © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 9
EXAMPLES


   Ushahidi

   GeoNames

   Geonode

   Google MapMaker

   OpenStreetMaps


                   Aim at providing open data through the
             Creative Commons Attribution – ShareAlike license
           data can be used freely and if you alter or build upon it,
         you need to share those alterations back to the community



                                            © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 10
OPEN DATA




Data is considered to be open if

     it is and publish online,
     updated as often as possible,
     provided in a way that allows for its legal use for any purpose, and
     that allows easy processing with any arbitrary software program




                                            © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 11
OPENSTREETMAP



   The OpenStreetMap project is a crowdsourced geospatial data
    repository, with a global cast of volunteers.

   With the mission to create a free editable dataset of the world




   It has been very successful especially
     In producing data fro places where it was very scarce
        (rural & peri-urban areas)
     In keeping up-to-date datasets of rapidly evolving urban areas




                                             © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 12
OPENSTREETMAP
A YEAR OF EDITS




                  © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 13
OPENSTREETMAP
PROJECT HAITI - 2010




                       © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 14
OPENSTREETMAP




                © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 15
SPATIAL DATASETS
CROWDSOURCING IMPACT

                       Chia, Colombia




                                                               Maps



                                   © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 16
OPENSTREETMAP
COMPARISON




                                                            Enschede

                © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 17
OPENSTREETMAP
COMPARISON




                                                            Guatemala
                                                            City

                © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 18
SPATIAL DATASETS
CROWDSOURCING IMPACT

     Lahore, Pakistan in           Lahore, Pakistan in
       Google Maps                   Google Maps
       (before MapMaker)                 (after MapMaker)




                           © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 19
SPATIAL DATASETS
CROWDSOURCING IMPACT

                       Bolivia




                                 © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 20
USHAHIDI
HISTORY




           © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 21
USHAHIDI
WORKING APPROACH




                   © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 22
USHAHIDI
DATA INPUTS




              © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 23
USHAHIDI
EXPLOITATION

               Disaster Response




                              © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 24
USHAHIDI
EXAMPLES   http://ushahidi.internewskenya.org/




              © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 25
USHAHIDI
EXAMPLES              http://haiti.ushahidi.com/




           © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 26
CONCLUSIONS
CROWDS & SDI

   Work on something relevant
    (or at least has the promise of being useful relatively soon)

   Put the users at the center
     View users as important contributors
     Give them responsibility
     Enable ratings
     Derive metadata from usage

   Make customization as easy as possible
     Enable mashups
     Unlock the visualizations

   Index your data and become searchable



                                             © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 27
CHALLENGES
RESEARCH ISSUES

   Automatic validation an filtering of data inputs

   Indirect geo-tagging (mining of social networks)

   Automatic aggregation & summarizing of similar data entries






                                   © Community FixIt




                                                       © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 28
© Department of Geo-information Processing (GIP) – 27-Oct-2011 – 29

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14 crowdsourcinggi

  • 1. CROWDSOURCING AND GI JAVIER MORALES
  • 2. AGENDA CROWDSOURCING AND SPATIAL DATA INFRASTRUCTURES  Background  Crowdsourcing Principles  Examples  Conclusions © Manuel Ramos © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 2
  • 3. BACKGROUND THE ROLE OF GI Geographic information (GI) was for generations produced and consumed by professionals Societal processes  land transfer,  planning and development,  risk management  … that affect organisations and individuals. Trend to develop mechanisms to bring GI closer to non-professional users © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 3
  • 4. BACKGROUND MODERN TOOLS  Web 2.0  high interactivity,  sharing and collaboration,  Interoperability, and  real-time user-generated content  Web 2.0 apps  social networking,  blogging,  wikis,  video sharing, and  Mashups © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 4
  • 5. BACKGROUND WEB 2.0 The users’ role has changed from looking for and retrieving content  to active participation © www.techscreens.com everyone contributes to the common knowledge of the group they interact with Wikipedia, YouTube, Flickr, Wikimedia © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 5
  • 6. CROWDSOURCING WHY?  Organisations today have to operate in information-rich environments  They can no longer afford to rely entirely on their own ideas  They cannot bet their success to a single product to the market  Traditional development which largely focused on  intra-organisational skills,  closed off from outside ideas and technologies is becoming obsolete © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 6
  • 7. CROWD-WHAT?  Crowdsourcing is the act of taking a job traditionally performed by a designated agent (usually an employee) and outsourcing it to an undefined, generally large group of people in the form of an open call. Jeff Howe © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 7
  • 8. CROW-WHAT?  The crowdsourcing approach  a recognised entity posts a problem online  a large number of individuals reacts  they provide a small part of the solution to the problem  solutions offered are exhaustive and not disjoint  This approach is popular because  web-based social technology makes it feasible & affordable to collect data using groups of individuals  such data is often more accurate indicator of current conditions in the real world than what can be obtained from data stored in databases © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 8
  • 9. CROWDSOURCING PRINCIPLES 1. Formulate the problem properly  Scope & purpose 2. State deliverables concretely (quality)  let the crowd know exactly what is expected from them  leave space for their creativity 3. Connect with the right crowd  diversity (the question is answered from multiple points of view)  scientists or specialists and a significant number of hobbyists with knowledge in the problem domain 4. Deploy the appropriate crowd management scheme  moderate discussion boards  post provocative challenges & publish milestones © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 9
  • 10. EXAMPLES  Ushahidi  GeoNames  Geonode  Google MapMaker  OpenStreetMaps Aim at providing open data through the Creative Commons Attribution – ShareAlike license data can be used freely and if you alter or build upon it, you need to share those alterations back to the community © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 10
  • 11. OPEN DATA Data is considered to be open if  it is and publish online,  updated as often as possible,  provided in a way that allows for its legal use for any purpose, and  that allows easy processing with any arbitrary software program © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 11
  • 12. OPENSTREETMAP  The OpenStreetMap project is a crowdsourced geospatial data repository, with a global cast of volunteers.  With the mission to create a free editable dataset of the world  It has been very successful especially  In producing data fro places where it was very scarce (rural & peri-urban areas)  In keeping up-to-date datasets of rapidly evolving urban areas © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 12
  • 13. OPENSTREETMAP A YEAR OF EDITS © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 13
  • 14. OPENSTREETMAP PROJECT HAITI - 2010 © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 14
  • 15. OPENSTREETMAP © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 15
  • 16. SPATIAL DATASETS CROWDSOURCING IMPACT Chia, Colombia Maps © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 16
  • 17. OPENSTREETMAP COMPARISON Enschede © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 17
  • 18. OPENSTREETMAP COMPARISON Guatemala City © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 18
  • 19. SPATIAL DATASETS CROWDSOURCING IMPACT Lahore, Pakistan in Lahore, Pakistan in Google Maps Google Maps (before MapMaker) (after MapMaker) © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 19
  • 20. SPATIAL DATASETS CROWDSOURCING IMPACT Bolivia © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 20
  • 21. USHAHIDI HISTORY © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 21
  • 22. USHAHIDI WORKING APPROACH © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 22
  • 23. USHAHIDI DATA INPUTS © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 23
  • 24. USHAHIDI EXPLOITATION Disaster Response © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 24
  • 25. USHAHIDI EXAMPLES http://ushahidi.internewskenya.org/ © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 25
  • 26. USHAHIDI EXAMPLES http://haiti.ushahidi.com/ © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 26
  • 27. CONCLUSIONS CROWDS & SDI  Work on something relevant (or at least has the promise of being useful relatively soon)  Put the users at the center  View users as important contributors  Give them responsibility  Enable ratings  Derive metadata from usage  Make customization as easy as possible  Enable mashups  Unlock the visualizations  Index your data and become searchable © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 27
  • 28. CHALLENGES RESEARCH ISSUES  Automatic validation an filtering of data inputs  Indirect geo-tagging (mining of social networks)  Automatic aggregation & summarizing of similar data entries  © Community FixIt © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 28
  • 29. © Department of Geo-information Processing (GIP) – 27-Oct-2011 – 29