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UCD Library
University College Dublin,
Belfield, Dublin 4, Ireland
Leabharlann UCD
An Coláiste Ollscoile, Baile Átha Cliath,
Belfield, Baile Átha Cliath 4, Eire
COUNTER standards for Open
Access: The value of
measuring/the measuring of
value
LIBER 2017
Patras, 6 July
Joseph Greene
Research Repository Librarian
University College Dublin
joseph.greene@ucd.ie
http://researchrepository.ucd.ie
Introduction
Defining success, defining value
Call: define
success
“…[we] too often conflate several
rather different objectives for
transforming scholarly
communications...”
https://scholarlykitchen.sspnet.org/2017/05/23/open-access-scholarly-communication-defining-success/
First
principles:
BOAI 2002
“…the world-wide electronic
distribution of the peer-reviewed
journal literature and completely
free and unrestricted access to it...”
Measure
distribution
Tipping point: in 2014,
more than 50% of recent
papers (2011-2013) were
found to be Open access
Archambault, E. et al. (2014). Proportion of Open Access Papers Published in Peer-Reviewed Journals at the European and World Levels:
1996–2013 (41p.). Produced for the European Commission DG Research & Innovation.
Measuring ‘free and
unrestricted access’
Defining value, measuring value
OA Citation
advantage
• At least 40 separate studies show that
Open Access increases citations1,2
• Wide variations between disciplines
• 35% increase in mathematics2
• 500% increase in citations in
physics/astronomy2
• Most recent study: 3.3 million papers3
• Average: OA = 50% more citations
• (Green is overall the better strategy)
1Wagner, B. (2010) ‘Open Access Citation Advantage: An Annotated Bibliography’. DOI: 10.5062/F4Q81B0W
2Swan, A. (2010) ‘The Open Access citation advantage: Studies and results to date’. https://eprints.soton.ac.uk/268516/
3Archambault, E. (2016) ‘Research impact of paywalled versus open access papers’. www.1science.com/oanumbr.html
OACitationAdvantage {
if (papers_are_OA) {
papers_are_accessible = true;
citationAdvantage();
}
}
citationAdvantage {
if (papers_are_accessible) {
++papers_read;
++chance_of_citation;
}
}
Measuring access
Usage data as metric
BOAI15
'Means should exist that will permit
having some idea of the value and
quality of each document, for
example, a number of metrics having
to do with views, downloads,
comments, corrections'
Guédon, Jean-Claude (2017-02). Open Access: Toward the Internet of the Mind. http://www.budapestopenaccessinitiative.org/open-
access-toward-the-internet-of-the-mind
European
Commission
'Usage metrics are highly relevant for
open-science'
Recommend 'making better use of
existing metrics for open science'
including usage metrics
Directorate-General for Research and Innovation (2017-03). Next-generation metrics: Responsible metrics and evaluation for open science
DOI:10.2777/337729
Coalition for
Networked
Information
'Researchers and librarians at several
universities are working to make
analytics on use of items in IRs more
reliable‘
But 'statistics generated by the
systems are poor and do not
demonstrate impact'
CNI Executive Roundtable (2017-04). Rethinking Institutional Repository Strategies. https://www.cni.org/topics/publishing/rethinking-
institutional-repository-strategies
OA usage statistics
Usage data
are not
perfect
• Up to 85% of OA repository
downloads come from non-human
agents1
• At least 40% of OA journal
downloads are not human2
• Even with robot detection, there is
room for improvement3
• DSpace stats: 62% human
• EPrints stats: 55% human
• U. Minho DSpace stats: 59-73%
human
1Greene, J. (2016) 'Web robot detection in scholarly Open Access institutional repositories'. Library Hi Tech, 34 (3):500-520
2Huntington, P., Nicholas, D., & Jamali, H. R. (2008). Web robot detection in the scholarly information environment. Journal of Information
Science, 34(5), 726-741
3Greene, J. (2016) 'How Accurate are IR Usage Statistics?’. Open Repositories (OR2016) Dublin, 13-16 June 2016
Creating standards
Raw data to empirical knowledge
Problems
• Many ways to do robot detection
• (At least 23 in the literature , not to
mention combinations)
• Nothing resembling a standard
available
• Cross-platform comparison and
aggregation impossible
Addressing
the
problem
• COUNTER Robots Working Group
• Joseph Greene, UCD, RIAN (chair)
• Lorraine Estelle, Project COUNTER
• Paul Needham, IRUS-UK/COUNTER
• Representatives from EBSCO, Elsevier, Wiley,
ScholarlyIQ, DSpace, EPrints, DigitalCommons,
OpenAIRE, Base Bielefeld and Open Journal
Systems
“…to devise ‘adaptive filtering systems’ that will allow publishers/repositories/services to
follow a common set of rules to dynamically identify and filter out unusual usage and
robot activity”
Usage data sources
.csv
.csv
.txt
Source: Bielefeld/OJS (x3)
Lines: 233,000
Source: IRUS-UK (97 IRs)
Lines: 1.9 million
Source: Wiley
Lines: Several million
PostgreSQL database
Several million rows Period: 3-9 October 2016
Robot
detection
• Simple random sample taken
• 202-204 downloads for each dataset
• 95% certainty
• 12 syntactic variables from SQL
queries or added manually
• E.g. IP address, agent, IP owner
• 12-13 behavioural variables added
using SQL queries or API calls
• E.g. number of downloads by user,
number of items downloaded,
dates/times seen
Mozilla/5.0 (compatible; Baiduspider/2.0; +http://www.baidu.com/search/spider.html)
Mozilla/5.0 (compatible; Googlebot/2.1; +http://www.google.com/bot.html)
Mozilla/5.0 (compatible; spbot/5.0.3; +http://OpenLinkProfiler.org/bot )
Sogou web spider/4.0(+http://www.sogou.com/docs/help/webmasters.htm#07)
gsa-crawler(Enterprise; T4-BLNCV2FADUSTW; webteam-chat@lists.strath.ac.uk)
Mozilla/5.0 (compatible; YandexBot/3.0; +http://yandex.com/bots)
RePEc link checker (http://EconPapers.repec.org/check/)
Jakarta Commons-HttpClient/3.0.1
Betsie
Self-declared robots
Undeclared but obvious behaviour
Testing
filters
• Test existing COUNTER robots list
• Test existing COUNTER double-click
filter
• Rate of requests
• Volume of requests
• User agents per IP address
• Requests where requested item =
referring URL
Testing
filters
• Simulate a set of filters on the
datasets
• Assign true/false positives,
true/false negatives compared
with manual determination
• Calculate:
• Recall, precision (excluded stats)
• Inverse recall, inverse precision
(reported stats)
• Find best combination of filters,
balance of practicality and
accuracy
Results: COUNTER Code of
Practice Release 5, 2017
joseph.greene@ucd.ie

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COUNTER Standards for Open Access: the Value of Measuring/ the Measuring of Value

  • 1. UCD Library University College Dublin, Belfield, Dublin 4, Ireland Leabharlann UCD An Coláiste Ollscoile, Baile Átha Cliath, Belfield, Baile Átha Cliath 4, Eire COUNTER standards for Open Access: The value of measuring/the measuring of value LIBER 2017 Patras, 6 July Joseph Greene Research Repository Librarian University College Dublin joseph.greene@ucd.ie http://researchrepository.ucd.ie
  • 3. Call: define success “…[we] too often conflate several rather different objectives for transforming scholarly communications...” https://scholarlykitchen.sspnet.org/2017/05/23/open-access-scholarly-communication-defining-success/
  • 4. First principles: BOAI 2002 “…the world-wide electronic distribution of the peer-reviewed journal literature and completely free and unrestricted access to it...”
  • 5. Measure distribution Tipping point: in 2014, more than 50% of recent papers (2011-2013) were found to be Open access Archambault, E. et al. (2014). Proportion of Open Access Papers Published in Peer-Reviewed Journals at the European and World Levels: 1996–2013 (41p.). Produced for the European Commission DG Research & Innovation.
  • 6. Measuring ‘free and unrestricted access’ Defining value, measuring value
  • 7. OA Citation advantage • At least 40 separate studies show that Open Access increases citations1,2 • Wide variations between disciplines • 35% increase in mathematics2 • 500% increase in citations in physics/astronomy2 • Most recent study: 3.3 million papers3 • Average: OA = 50% more citations • (Green is overall the better strategy) 1Wagner, B. (2010) ‘Open Access Citation Advantage: An Annotated Bibliography’. DOI: 10.5062/F4Q81B0W 2Swan, A. (2010) ‘The Open Access citation advantage: Studies and results to date’. https://eprints.soton.ac.uk/268516/ 3Archambault, E. (2016) ‘Research impact of paywalled versus open access papers’. www.1science.com/oanumbr.html
  • 8. OACitationAdvantage { if (papers_are_OA) { papers_are_accessible = true; citationAdvantage(); } } citationAdvantage { if (papers_are_accessible) { ++papers_read; ++chance_of_citation; } }
  • 10. BOAI15 'Means should exist that will permit having some idea of the value and quality of each document, for example, a number of metrics having to do with views, downloads, comments, corrections' Guédon, Jean-Claude (2017-02). Open Access: Toward the Internet of the Mind. http://www.budapestopenaccessinitiative.org/open- access-toward-the-internet-of-the-mind
  • 11. European Commission 'Usage metrics are highly relevant for open-science' Recommend 'making better use of existing metrics for open science' including usage metrics Directorate-General for Research and Innovation (2017-03). Next-generation metrics: Responsible metrics and evaluation for open science DOI:10.2777/337729
  • 12. Coalition for Networked Information 'Researchers and librarians at several universities are working to make analytics on use of items in IRs more reliable‘ But 'statistics generated by the systems are poor and do not demonstrate impact' CNI Executive Roundtable (2017-04). Rethinking Institutional Repository Strategies. https://www.cni.org/topics/publishing/rethinking- institutional-repository-strategies
  • 14.
  • 15.
  • 16. Usage data are not perfect • Up to 85% of OA repository downloads come from non-human agents1 • At least 40% of OA journal downloads are not human2 • Even with robot detection, there is room for improvement3 • DSpace stats: 62% human • EPrints stats: 55% human • U. Minho DSpace stats: 59-73% human 1Greene, J. (2016) 'Web robot detection in scholarly Open Access institutional repositories'. Library Hi Tech, 34 (3):500-520 2Huntington, P., Nicholas, D., & Jamali, H. R. (2008). Web robot detection in the scholarly information environment. Journal of Information Science, 34(5), 726-741 3Greene, J. (2016) 'How Accurate are IR Usage Statistics?’. Open Repositories (OR2016) Dublin, 13-16 June 2016
  • 17. Creating standards Raw data to empirical knowledge
  • 18. Problems • Many ways to do robot detection • (At least 23 in the literature , not to mention combinations) • Nothing resembling a standard available • Cross-platform comparison and aggregation impossible
  • 19. Addressing the problem • COUNTER Robots Working Group • Joseph Greene, UCD, RIAN (chair) • Lorraine Estelle, Project COUNTER • Paul Needham, IRUS-UK/COUNTER • Representatives from EBSCO, Elsevier, Wiley, ScholarlyIQ, DSpace, EPrints, DigitalCommons, OpenAIRE, Base Bielefeld and Open Journal Systems “…to devise ‘adaptive filtering systems’ that will allow publishers/repositories/services to follow a common set of rules to dynamically identify and filter out unusual usage and robot activity”
  • 20. Usage data sources .csv .csv .txt Source: Bielefeld/OJS (x3) Lines: 233,000 Source: IRUS-UK (97 IRs) Lines: 1.9 million Source: Wiley Lines: Several million PostgreSQL database Several million rows Period: 3-9 October 2016
  • 21. Robot detection • Simple random sample taken • 202-204 downloads for each dataset • 95% certainty • 12 syntactic variables from SQL queries or added manually • E.g. IP address, agent, IP owner • 12-13 behavioural variables added using SQL queries or API calls • E.g. number of downloads by user, number of items downloaded, dates/times seen
  • 22. Mozilla/5.0 (compatible; Baiduspider/2.0; +http://www.baidu.com/search/spider.html) Mozilla/5.0 (compatible; Googlebot/2.1; +http://www.google.com/bot.html) Mozilla/5.0 (compatible; spbot/5.0.3; +http://OpenLinkProfiler.org/bot ) Sogou web spider/4.0(+http://www.sogou.com/docs/help/webmasters.htm#07) gsa-crawler(Enterprise; T4-BLNCV2FADUSTW; webteam-chat@lists.strath.ac.uk) Mozilla/5.0 (compatible; YandexBot/3.0; +http://yandex.com/bots) RePEc link checker (http://EconPapers.repec.org/check/) Jakarta Commons-HttpClient/3.0.1 Betsie Self-declared robots
  • 24. Testing filters • Test existing COUNTER robots list • Test existing COUNTER double-click filter • Rate of requests • Volume of requests • User agents per IP address • Requests where requested item = referring URL
  • 25. Testing filters • Simulate a set of filters on the datasets • Assign true/false positives, true/false negatives compared with manual determination • Calculate: • Recall, precision (excluded stats) • Inverse recall, inverse precision (reported stats) • Find best combination of filters, balance of practicality and accuracy
  • 26. Results: COUNTER Code of Practice Release 5, 2017 joseph.greene@ucd.ie