Occlusion-Resistant Instance Segmentation of Piglets in Farrowing Pens Using Center Clustering Network
Endai Huang, Axiu Mao, Junhui Hou, Yongjian Wu, Weitao Xu, Maria, Camila Ceballos, Thomas D. Parsons, Kai Liu

TL;DR
This paper introduces CClusnet-Inseg, a novel instance segmentation method tailored for occlusion-heavy environments like pig farrowing pens, achieving high accuracy and robustness in detecting individual piglets.
Contribution
The paper adapts a center clustering network for instance segmentation in occluded scenarios, demonstrating improved performance over existing methods in real-world pig farm environments.
Findings
Achieves 84.1 mAP in piglet segmentation
Outperforms existing segmentation methods in occlusion-heavy settings
Provides occlusion-resistant object center representations for tracking
Abstract
Computer vision enables the development of new approaches to monitor the behavior, health, and welfare of animals. Instance segmentation is a high-precision method in computer vision for detecting individual animals of interest. This method can be used for in-depth analysis of animals, such as examining their subtle interactive behaviors, from videos and images. However, existing deep-learning-based instance segmentation methods have been mostly developed based on public datasets, which largely omit heavy occlusion problems; therefore, these methods have limitations in real-world applications involving object occlusions, such as farrowing pen systems used on pig farms in which the farrowing crates often impede the sow and piglets. In this paper, we adapt a Center Clustering Network originally designed for counting to achieve instance segmentation, dubbed as CClusnet-Inseg. Specifically,…
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Taxonomy
TopicsAnimal Behavior and Welfare Studies · Effects of Environmental Stressors on Livestock · Animal Disease Management and Epidemiology
MethodsRegion Proposal Network · RoIAlign · Softmax · Convolution · Mask R-CNN
