Full Paper

Automated Parsing of Personal Identity Facets for a Collection of Visual Images

  • Brian Dobreski 1 ORCID
  • Melissa Resnick 2 ORCID
  • Benjamin Horne 1 ORCID
  • 1 University of Tennessee, Knoxville, United States
  • 2 University at Buffalo, United States
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Open access CC BY 4.0
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Abstract

Collections of digitized, historical images serve as rich primary sources for digital humanities research, though access to these resources has been hindered by inadequate subject metadata. In this study, researchers explored the feasibility of performing subject analysis for a collection of historical images of persons through an automated procedure. Building on previous work that developed a faceted system for representing the identities of persons depicted in 19th century visual images, the present work attempted to automate the process of person and facet parsing for images from the A.S. Williams III Collection at the University of Alabama. A case-based model was built and used to analyze image titles. Compared to a manual control process, the automated model achieved a 95% success rate in parsing persons and an 85% success rate in parsing facets. Errors in parsing were more likely to occur for images of multiple persons, as well as those labeled with incomplete or uncertain names. Findings offer further support for faceted analysis of personal identity in historical materials, and reveal the potentials of automated, text-based methods of enhancing subject access for large visual image collections.

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Article details

Published
Section
Full Papers
DOI
10.23106/dcmi.953156738
License
CC BY 4.0 · open access

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dcterms:title
Automated Parsing of Personal Identity Facets for a Collection of Visual Images
dcterms:creator
Dobreski, Brian
Resnick, Melissa
Horne, Benjamin
dcterms:date
2023-03-30
dcterms:identifier
doi:10.23106/dcmi.953156738
dcterms:subject
facet analysis
case-based models
personal identity
visual images
dcterms:isPartOf
DCMI-2022 Proceedings
dcterms:publisher
Dublin Core Metadata Initiative
dcterms:type
Text
dcterms:language
en
dcterms:rights
CC BY 4.0