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Behavior-Specific Filtering for Enhanced Pig Behavior Classification in Precision Livestock Farming

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Author :  Zhen Zhang 1, Dong Sam Ha 1, Gota Morota 1,2 and Sook Shin1

Affiliation :  1 Virginia Tech, 2 The University of Tokyo

Country :  USA

Category :  Networks & Communications

Volume, Issue, Month, Year :  15, 13, July, 2026

Abstract :


This study proposes a behavior-specific filtering method to improve behavior classification accuracy in Precision Livestock Farming. While traditional filtering methods, such as wavelet denoising, achieved an accuracy of 91.58%, they apply uniform processing to all behaviors. In contrast, the proposed behavior specific filtering method combines Wavelet Denoising with a Low Pass Filter, tailored to active and inactive pig behaviors, and achieved a peak accuracy of 94.73%. These results highlight the effectiveness of behavior-specific filtering in enhancing animal behavior monitoring, supporting better health management and farm efficiency.

Keyword :  Precision Livestock Farming, Behavior-Specific Filtering, Behavior Classification, Sensor Data

Journal/ Proceedings Name :  CS & IT

URL :  https://aircconline.com/csit/abstract/v15n13/csit151308.html

User Name : alex
Posted 25-06-2026 on 03:30:30 AEDT



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