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YOLOv8-Based Deep Learning Model for Automated Poultry Disease Detection and Health Monitoring paper
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本文介绍了一种基于YOLO v8深度学习模型的AI鸡病检测系统,通过分析高清鸡照片,实时识别鸡病症状,提高农场健康管理和生物安全。

arXiv:2508.04658v1 Announce Type: cross Abstract: In the poultry industry, detecting chicken illnesses is essential to avoid financial losses. Conventional techniques depend on manual observation, which is laborious and prone to mistakes. Using YOLO v8 a deep learning model for real-time object recognition. This study suggests an AI based approach, by developing a system that analyzes high resolution chicken photos, YOLO v8 detects signs of illness, such as abnormalities in behavior and appearance. A sizable, annotated dataset has been used to train the algorithm, which provides accurate real-time identification of infected chicken and prompt warnings to farm operators for prompt action. By facilitating early infection identification, eliminating the need for human inspection, and enhancing biosecurity in large-scale farms, this AI technology improves chicken health management. The real-time features of YOLO v8 provide a scalable and effective method for improving farm management techniques.

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AI 鸡病检测 YOLO v8 深度学习 农场管理
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