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Published on: December 15, 2010
Human and machine similarity judgments in forensic firearm comparisons
Maria Cuellar1, Cleotilde Gonzalez2, Itiel E Dror3
1University of Pennsylvania, Department of Criminology and Department of Statistics and Data Science, 3718 Locust Walk, Philadelphia, PA, 19104, USA.
Abstract:
It is unclear whether humans assess similarity differently than automated algorithms in firearms comparisons. Human participants (untrained in firearm examination) were asked to assess the similarity of pairs of images (from 0 to 100). A sample of 40 pairs of cartridge casing 2D-images was used. The images were divided into 4 groups according to their similarity as determined by an algorithm. Humans were able to distinguish between matches and non-matches (both when shown the 2 middle groups, as well as when shown all 4 groups). Thus, humans are able to make high-quality similarity judgments in firearm comparisons based on two images. The humans' similarity scores were superior to the algorithms' scores at distinguishing matches and non-matches, but inferior in assessing similarity within groups. This suggests that humans do not have the same group thresholds as the algorithm, and that a hybrid human-machine approach could provide better identification results than humans or algorithms alone.
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