2023
DOI: 10.1101/2023.03.05.531235
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Social Behavior Atlas: A computational framework for tracking and mapping 3D close interactions of free-moving animals

Abstract: The study of social behaviors in animals is essential for understanding their survival and reproductive strategies. However, accurately tracking and analyzing the social interactions of free-moving animals has remained a challenge. Existing multi-animal pose estimation techniques suffer from drawbacks such as the need for extensive manual annotation and difficulty in discriminating between similar-looking animals in close social interactions. In this paper, we present the Social Behavior Atlas (SBeA), a novel … Show more

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Cited by 6 publications
(7 citation statements)
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References 52 publications
(92 reference statements)
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“…This structure design makes ADPT show significantly fewer tracking drifts than DeepLabCut and SLEAP Mathis et al (2018 ); Pereira et al (2022 ). The effect of anti-drift of ADPT is universally validated in the public datasets and our customized datasets including Drosophilas, mice, and macaques, which demonstrates that ADPT is robust in broad application scenarios cross-species Pereira et al (2019 ); Bala et al (2020 ); Han et al (2023a ). ADPT also achieves robust pose estimation and identity recognition of free-interactive mice combined with a mix-up dataset generation strategy.…”
Section: Introductionmentioning
confidence: 72%
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“…This structure design makes ADPT show significantly fewer tracking drifts than DeepLabCut and SLEAP Mathis et al (2018 ); Pereira et al (2022 ). The effect of anti-drift of ADPT is universally validated in the public datasets and our customized datasets including Drosophilas, mice, and macaques, which demonstrates that ADPT is robust in broad application scenarios cross-species Pereira et al (2019 ); Bala et al (2020 ); Han et al (2023a ). ADPT also achieves robust pose estimation and identity recognition of free-interactive mice combined with a mix-up dataset generation strategy.…”
Section: Introductionmentioning
confidence: 72%
“…In addition, the well-annotated animal pose datasets are not abundant enough to cover various experiment settings. Experimenters always need to make customized datasets for their specific applications Han et al (2023a ). Therefore, the application of the Transformer to reduce tracking drift in the animal pose estimation task still needs an elaborate design of ANN structures.…”
Section: Introductionmentioning
confidence: 99%
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“…More cameras in different directions can be added to MiceVAPORDot for the 3D reconstruction of each mouse (Han et al, 2022). Additionally, the behavioral phenotype profile can be a more comprehensive description of the effects of e-cigarettes (Huang et al, 2021; Liu et al, 2021), the accurate tracking of animals requires massive dataset annotations for training the deep learning model which can be simplified by generative data annotation methods to increase the speed of data processing (Han et al, 2023).…”
Section: Discussionmentioning
confidence: 99%