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Video-based analysis of dairy cow behaviour: detection of lying down and standing up

Authors :
Adriaens, I.
Ouweltjes, W.
Hulsegge, B.
Kamphuis, C.
Adriaens, I.
Ouweltjes, W.
Hulsegge, B.
Kamphuis, C.
Source :
ISBN: 9789086869404
Publication Year :
2022

Abstract

Digital agriculture offers opportunities for improved monitoring and precision phenotyping of farm animals, crucial to achieving a more sustainable livestock production sector. Video-based analysis enables the quantification of animal behaviour in a non-invasive, automated way with few sensors. To unlock its full potential, appropriate computer vision techniques are needed. In this study, we propose an algorithm to detect lying-down and standing-up behaviour in dairy cows based on changes in bounding box properties detected via YOLOv5 and tracked with DeepSORT. We analysed 86 videos with a standing-up or lying-down event. With different criteria applied to the bounding box time series, we could detect up to respectively 92.3 and 80% for standing-up and lying-down events, respectively, with an accuracy of less than 2 seconds. Using bounding box properties as proxy for body shape and location, a general cow detection algorithm can serve multiple behavioural analyses simultaneously, whilst interpretability of the algorithms is maintained.

Details

Database :
OAIster
Journal :
ISBN: 9789086869404
Notes :
application/pdf, Proceedings of 12th World Congress on Genetics Applied to Livestock Production (WCGALP), ISBN: 9789086869404, ISBN: 9789086869404, English
Publication Type :
Electronic Resource
Accession number :
edsoai.on1376683277
Document Type :
Electronic Resource