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  5. A method to track dataset reuse in biomedicine: Filtered GEO accession numbers in PubMed Central
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A method to track dataset reuse in biomedicine: Filtered GEO accession numbers in PubMed Central

Source Publication
Proceedings of the American Society for Information Science and Technology
Date Issued
November 1, 2010
Author(s)
Piwowar, Heather A
DOI
10.1002/meet.14504701450
Link to full text
https://onlinelibrary.wiley.com/doi/epdf/10.1002/meet.14504701450
Permanent URI
https://trace.tennessee.edu/handle/20.500.14382/16788
Abstract

Reusing research data has important potential benefits: generative science and efficient resource use. Tracking the reuse of research datasets would allow us to understand whether the potential benefits are indeed realized, enable recognition of investigators who produce, annotate, and share useful data, and inform data sharing and reuse initiatives, tools, and policies.


Unfortunately, the lack of clear attribution practices for data make automated tracking of data reuse difficult. I present a method for tracking research data reuse that takes advantage of the community norms around gene expression microarray data sharing and the rich NCBI Entrez resources. Specifically, the full‐text of papers stored in PubMed Central are queried for accession numbers of datasets archived in NCBI's Gene Expression Omnibus (GEO) repository. Studies known to have created microarray data are excluded through automated filters and guided manual curation. MeSH terms attached to the data creation and data reuse studies provide additional information for analysis. Finally, I extrapolate the findings to all of PubMed.

Automated portions of this method have been implemented in python and are openly available. Although imperfect, this dataset is a valuable initial resource for research into patterns of data reuse.

Subjects

data sharing

data reuse

method

bioinformatics

bibliometrics

human information beh...

Disciplines
Cataloging and Metadata
Scholarly Communication
Recommended Citation
Piwowar, H. (2010). A method to track dataset reuse in biomedicine: Filtered GEO accession numbers in PubMed Central. Proceedings of the American Society for Information Science and Technology, 47(1), 1-2.
Submission Type
Post-print
Embargo Date
November 1, 2011
File(s)
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Piwowar_2010_Proceedings_of_the_American_Society_for_Information_Science_and_Technology.pdf

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122.36 KB

Format

Adobe PDF

Checksum (MD5)

c88c2ce8b2f1e0daaf30c14099b7d92f


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