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Search: WFRF:(Andersen Pia) > (2020-2024) > Sharing pain :

Sharing pain : Using pain domain transfer for video recognition of low grade orthopedic pain in horses

Broomé, Sofia (author)
KTH,Robotik, perception och lärande, RPL
Ask, Katrina (author)
Swedish University of Agricultural Sciences,Sveriges lantbruksuniversitet,Institutionen för anatomi, fysiologi och biokemi,Department of Anatomy, Physiology and Biochemistry (AFB)
Rashid-Engstrom, Maheen (author)
Univ Calif Davis, Dept Comp Sci, Davis, CA 95616 USA.;Univrses, Stockholm, Sweden.
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Haubro Andersen, Pia (author)
Swedish University of Agricultural Sciences,Sveriges lantbruksuniversitet,Institutionen för kliniska vetenskaper (KV),Department of Clinical Sciences
Kjellström, Hedvig, 1973- (author)
KTH,Robotik, perception och lärande, RPL,Silo AI, Stockholm, Sweden.
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 (creator_code:org_t)
 
2022-03-04
2022
English.
In: PLOS ONE. - : Public Library of Science (PLoS). - 1932-6203. ; 17:3, s. e0263854-
  • Journal article (peer-reviewed)
Abstract Subject headings
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  • Orthopedic disorders are common among horses, often leading to euthanasia, which often could have been avoided with earlier detection. These conditions often create varying degrees of subtle long-term pain. It is challenging to train a visual pain recognition method with video data depicting such pain, since the resulting pain behavior also is subtle, sparsely appearing, and varying, making it challenging for even an expert human labeller to provide accurate ground-truth for the data. We show that a model trained solely on a dataset of horses with acute experimental pain (where labeling is less ambiguous) can aid recognition of the more subtle displays of orthopedic pain. Moreover, we present a human expert baseline for the problem, as well as an extensive empirical study of various domain transfer methods and of what is detected by the pain recognition method trained on clean experimental pain in the orthopedic dataset. Finally, this is accompanied with a discussion around the challenges posed by real-world animal behavior datasets and how best practices can be established for similar fine-grained action recognition tasks. Our code is available at https://github.com/sofiabroome/painface-recognition.

Subject headings

LANTBRUKSVETENSKAPER  -- Veterinärmedicin -- Klinisk vetenskap (hsv//swe)
AGRICULTURAL SCIENCES  -- Veterinary Science -- Clinical Science (hsv//eng)

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