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Media Ecologies and Methodological
Innovation: The Case of Twitter
Assoc. Prof. Axel Bruns
Queensland University of Technology
a.bruns@qut.edu.au – http://snurb.info/ – @snurb_dot_info
http://mappingonlinepublics.net/
Background: Related Projects

•   CCI Project:
     –   Media Ecologies and Methodological Innovation
         (Axel Bruns, Jean Burgess, Kate Crawford, Gerard Goggin, Terry Flew, John Hartley + RA Frances Shaw)

•   ARC Discovery Project (2010-13):
     –   New Media and Public Communication
         (AB & JB + Sociomantic Labs, RAs: Caro Jende, Tim Highfield, Jen Lofgren, Mirka Streckhardt)

•   ATN-DAAD Projects (2011-12):
     –   Social Media Monitoring: Analysis of Social Networks for Enterprises’ Issue Management (AsNIM)
         (AB & JB + Tanya Nitins, University of Münster: Stefan Stieglitz, Nina Krüger, Tobias Brockmann et al.)
     –   Extending Computer-Aided Methods for the Analysis of Blogging and Microblogging Discourses and Publics
         (AB & JB + Stephen Harrington, University of Düsseldorf: Katrin Weller, Cornelius Puschmann et al.)

•   ASSA-ISL Project (2010-11):
     –   Flood and Fire: Understanding the Structure and Process of Public Communication during Times of Crisis
         (AB & JB + National Cheng Chi University, Taipei: Pai-Lin Chen, Tsai-Yen Li, Yu-Chung Cheng et al.)

•   ARC Linkage Project (2012-14):
     –   Social Media in Times of Crisis: Learning from Recent Natural Disasters to Improve Future Strategies
         (AB, JB, KC, TF + Queensland Department of Community Safety, Eidos Institute, Sociomantic Labs)

•   Website: http://mappingonlinepublics.net/
Focus on Twitter

• Real-time public communication:
   –   Social media coverage as a first draft of the present
   –   Especially Twitter: flat, open, self-organising network
   –   First-hand, unfiltered, direct insights into Australians’ views
   –   Rich data on specific events and on long-term trends


• Readily available data:
   –   Access to rich data (and metadata) through standard APIs
   –   Especially on Twitter, limited immediate ethical concerns
   –   Ephemeral content which is lost to posterity unless archived
   –   ‘Big data’, but far from unmanageable
Key Outcomes: Individual Event Publics
Filipinos
                                                Marketing / PR


                                                                                                                   Adelaide

                                        Perth / PR                                                                                   Wine
                      News / Business




            Latika Bourke


                                                                                                                                        Food
    Journalism /
  Politics / News
                                        Australia on Twitter
Annabel Crabb                                                                                                                   Mumbrella

    Leigh Sales
                                                                                                                                            Fashion / Style / Parenting
  Malcolm Turnbull
                                                                                                                                        Marie Claire
         ABC News
             Crikey
                                                                                                                                  Fashion / Magazines
  Celebrities / Media                                                                                                    Arts

   Joe Hockey
                                                                                                                                 Mia Freedman
      Laurie Oakes
                                                                                                                                       Sunrise on 7
                Tony Abbott                                                                                                       Music / Triple J
             Julia Gillard
                                                                                                                         Matt Preston

                  Kevin Rudd                                                                                                     Triple J

                                                                                                                              Teens / TV Hits
            Wil Anderson                                                                    TV

          Football (Soccer)                                                             7pm Project                 (follower/followee network –
                                                                                                                    140,000 most connected
                      AFL                                                                Radio
                                                                                  NRL
                                                                                                                    Australia users, of 550,000
                                                                 Cricket                 Hamish and Andy   Teens
                      Sports                                                                                        processed so far)
Key Outcomes: Classifying Acute Events

                                    Unforeseen Crises




                                                 Counterculture?




                 Televised Events
‘Big Data’ Challenges: Teamwork

•   Team-based research approaches:
    – Interdisciplinary: media, communication and cultural studies; social science;
      informatics; mathematics; statistics; journalism; crisis communication;
      communication design; computer science; data visualisation; …

    – Exploratory: rapid prototyping of research methods and tools; use of
      emerging technology at the bleeding edge; following the data without a clear
      and specific research goal in mind (beyond ‘mapping online publics’ in
      general)

    – Flexible: dealing with real-time data may mean ‘ambulance chasing’ (e.g.
      #eqnz, #tsunami, #qantas); rapid data analysis and online publication well
      ahead of journal publication turnarounds; application across wide range of
      thematic and research domains

    – Collaborative: towards natural sciences-style lab-based research models;
      team research and multi-authored publications; individual sub-projects
      developed and driven by specific team members
‘Big Data’ Challenges: Graduate Training

•   New postgraduate and postdoctoral skillsets:
     – Postgraduate and postdoctoral recruitment: need for high-level
       undergraduate/honours project units to enthuse and encourage promising
       students; need to recruit well beyond standard media and communication
       fields means need to be visible in those fields (why would a computer
       scientist or statistician want to work with us?)

     – Postgraduate training: need to be able to supervise highly multidisciplinary
       research projects means multidisciplinary supervision teams; lab-style
       collaborative research projects means exploration of collaborative
       postgraduate research and cohort supervision

     – Risky research: changeable technological frameworks and reliance on third
       parties means whole PhD projects may be wiped out by a single Twitter API
       change; lack of university ethics guidelines means need to develop own
       research ethics and/or follow external standards (e.g. AoIR Ethics Guide)
‘Big Data’ Challenges: Infrastructure

•   Tools and support for ‘big data’ research:
     – Data capture: some available (open source) tools; need for customisation
       and further development; need for reliable, always-on capture infrastructure
       (and IT support); API changes likely to break existing frameworks; truly big,
       long term data access can be costly (may need industry partnerships?)

     – Data processing: need for significant computing power to process and
       visualise large data corpora; need for computer scientists to help develop
       customised processing tools addressing specific research questions

     – Data storage: even Twitter datasets can get very big; no standard solutions
       for short- and medium-term storage; what about long-term archiving of
       significant records of public communication (National Library)?

     – Research Dissemination: publications on real-time events need to be faster
       than standard journal cycles; need to embrace rapid publication of results
       and analysis online; also need to share tools (e.g. as open source); but
       what about sharing datasets to enable independent verification of results?
‘Big Data’ Challenges: Collaborations

•   Emerging field of research needs shared approaches:
     – International comparisons: parallel research projects to explore national
       differences and overlaps – e.g. Twitter and elections; Twitter and crisis
       communication; …

     – National consortia: shared infrastructure and datasets for particularly large-
       scale projects – e.g. comprehensive tracking and analysis of public
       communication by Australians on Twitter

     – General sharing of methods and tools: natural sciences-style frameworks for
       sharing tools and methods (and datasets?) to enable independent
       verification of research results; development of shared standards for data
       formats; researcher exchanges and internships

     – Industry collaborations: e.g. application partnerships with domain partners
       (media organisations, government departments, etc.); data capture,
       processing, and storage partnerships with major technology partners
       (Google, Microsoft, …); perhaps even partnerships with Twitter itself (?); but
       also need to consider research ethics implications of such partnerships
http://mappingonlinepublics.net/

@snurb_dot_info
@jeanburgess




                               http://mappingonlinepublics.net/

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Media Ecologies and Methodological Innovation: Understanding Public Communication through Social Media

  • 1. Media Ecologies and Methodological Innovation: The Case of Twitter Assoc. Prof. Axel Bruns Queensland University of Technology a.bruns@qut.edu.au – http://snurb.info/ – @snurb_dot_info http://mappingonlinepublics.net/
  • 2. Background: Related Projects • CCI Project: – Media Ecologies and Methodological Innovation (Axel Bruns, Jean Burgess, Kate Crawford, Gerard Goggin, Terry Flew, John Hartley + RA Frances Shaw) • ARC Discovery Project (2010-13): – New Media and Public Communication (AB & JB + Sociomantic Labs, RAs: Caro Jende, Tim Highfield, Jen Lofgren, Mirka Streckhardt) • ATN-DAAD Projects (2011-12): – Social Media Monitoring: Analysis of Social Networks for Enterprises’ Issue Management (AsNIM) (AB & JB + Tanya Nitins, University of Münster: Stefan Stieglitz, Nina Krüger, Tobias Brockmann et al.) – Extending Computer-Aided Methods for the Analysis of Blogging and Microblogging Discourses and Publics (AB & JB + Stephen Harrington, University of Düsseldorf: Katrin Weller, Cornelius Puschmann et al.) • ASSA-ISL Project (2010-11): – Flood and Fire: Understanding the Structure and Process of Public Communication during Times of Crisis (AB & JB + National Cheng Chi University, Taipei: Pai-Lin Chen, Tsai-Yen Li, Yu-Chung Cheng et al.) • ARC Linkage Project (2012-14): – Social Media in Times of Crisis: Learning from Recent Natural Disasters to Improve Future Strategies (AB, JB, KC, TF + Queensland Department of Community Safety, Eidos Institute, Sociomantic Labs) • Website: http://mappingonlinepublics.net/
  • 3. Focus on Twitter • Real-time public communication: – Social media coverage as a first draft of the present – Especially Twitter: flat, open, self-organising network – First-hand, unfiltered, direct insights into Australians’ views – Rich data on specific events and on long-term trends • Readily available data: – Access to rich data (and metadata) through standard APIs – Especially on Twitter, limited immediate ethical concerns – Ephemeral content which is lost to posterity unless archived – ‘Big data’, but far from unmanageable
  • 4. Key Outcomes: Individual Event Publics
  • 5. Filipinos Marketing / PR Adelaide Perth / PR Wine News / Business Latika Bourke Food Journalism / Politics / News Australia on Twitter Annabel Crabb Mumbrella Leigh Sales Fashion / Style / Parenting Malcolm Turnbull Marie Claire ABC News Crikey Fashion / Magazines Celebrities / Media Arts Joe Hockey Mia Freedman Laurie Oakes Sunrise on 7 Tony Abbott Music / Triple J Julia Gillard Matt Preston Kevin Rudd Triple J Teens / TV Hits Wil Anderson TV Football (Soccer) 7pm Project (follower/followee network – 140,000 most connected AFL Radio NRL Australia users, of 550,000 Cricket Hamish and Andy Teens Sports processed so far)
  • 6. Key Outcomes: Classifying Acute Events Unforeseen Crises Counterculture? Televised Events
  • 7. ‘Big Data’ Challenges: Teamwork • Team-based research approaches: – Interdisciplinary: media, communication and cultural studies; social science; informatics; mathematics; statistics; journalism; crisis communication; communication design; computer science; data visualisation; … – Exploratory: rapid prototyping of research methods and tools; use of emerging technology at the bleeding edge; following the data without a clear and specific research goal in mind (beyond ‘mapping online publics’ in general) – Flexible: dealing with real-time data may mean ‘ambulance chasing’ (e.g. #eqnz, #tsunami, #qantas); rapid data analysis and online publication well ahead of journal publication turnarounds; application across wide range of thematic and research domains – Collaborative: towards natural sciences-style lab-based research models; team research and multi-authored publications; individual sub-projects developed and driven by specific team members
  • 8. ‘Big Data’ Challenges: Graduate Training • New postgraduate and postdoctoral skillsets: – Postgraduate and postdoctoral recruitment: need for high-level undergraduate/honours project units to enthuse and encourage promising students; need to recruit well beyond standard media and communication fields means need to be visible in those fields (why would a computer scientist or statistician want to work with us?) – Postgraduate training: need to be able to supervise highly multidisciplinary research projects means multidisciplinary supervision teams; lab-style collaborative research projects means exploration of collaborative postgraduate research and cohort supervision – Risky research: changeable technological frameworks and reliance on third parties means whole PhD projects may be wiped out by a single Twitter API change; lack of university ethics guidelines means need to develop own research ethics and/or follow external standards (e.g. AoIR Ethics Guide)
  • 9. ‘Big Data’ Challenges: Infrastructure • Tools and support for ‘big data’ research: – Data capture: some available (open source) tools; need for customisation and further development; need for reliable, always-on capture infrastructure (and IT support); API changes likely to break existing frameworks; truly big, long term data access can be costly (may need industry partnerships?) – Data processing: need for significant computing power to process and visualise large data corpora; need for computer scientists to help develop customised processing tools addressing specific research questions – Data storage: even Twitter datasets can get very big; no standard solutions for short- and medium-term storage; what about long-term archiving of significant records of public communication (National Library)? – Research Dissemination: publications on real-time events need to be faster than standard journal cycles; need to embrace rapid publication of results and analysis online; also need to share tools (e.g. as open source); but what about sharing datasets to enable independent verification of results?
  • 10. ‘Big Data’ Challenges: Collaborations • Emerging field of research needs shared approaches: – International comparisons: parallel research projects to explore national differences and overlaps – e.g. Twitter and elections; Twitter and crisis communication; … – National consortia: shared infrastructure and datasets for particularly large- scale projects – e.g. comprehensive tracking and analysis of public communication by Australians on Twitter – General sharing of methods and tools: natural sciences-style frameworks for sharing tools and methods (and datasets?) to enable independent verification of research results; development of shared standards for data formats; researcher exchanges and internships – Industry collaborations: e.g. application partnerships with domain partners (media organisations, government departments, etc.); data capture, processing, and storage partnerships with major technology partners (Google, Microsoft, …); perhaps even partnerships with Twitter itself (?); but also need to consider research ethics implications of such partnerships