西门塔尔牛异常行为检测技术研究

Yizhao Jia, Lihao Qin, Dan He, Na Li
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引用次数: 0

摘要

本文主要研究西门塔尔牛异常行为检测技术,旨在建立高效可靠的异常行为检测系统,及时发现异常情况,并采取相应措施处理隐患。同时,本研究通过建立西门塔尔牛异常行为数据集,利用深度学习算法准确捕捉西门塔尔牛的存在、位置和关键身体部位,准确识别抽搐、摔倒等异常行为。将异常行为检测技术应用于畜牧业,实现对西门塔尔牛行为的无接触、自动化、高效监测,可为畜牧业提供先进、全面的智能健康管理解决方案,推动智能管理在畜牧业中的广泛应用。通过对西门塔尔牛行为的实时监测、预警和精细化管理,可有效降低疾病传播风险,提高养殖场的生产安全性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Research on Abnormal Behavior Detection Technology for Simmental Cattle
This paper mainly studies the abnormal behavior detection technology of Simmental cattle, aiming to establish an efficient and reliable abnormal behavior detection system, so as to detect abnormal situations in time and take corresponding measures to deal with potential problems. At the same time, by establishing a dataset for the abnormal behavior of Simmental cattle, the study uses deep learning algorithms to accurately capture the existence, location and key body parts of Simmental cattle, and accurately identify abnormal behaviors such as convulsions and falls. The application of abnormal behavior detection technology to animal husbandry to achieve contactless, automated, and efficient monitoring of Simmental cattle behavior can provide advanced and comprehensive intelligent health management solutions for animal husbandry and promote the wide application of intelligent management in animal husbandry. Real-time monitoring, early warning and fine management of Simmental cattle behavior can effectively reduce the risk of disease transmission and improve the production safety of farms.
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