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Real-time recognition of sick pig cough sounds

机译:实时识别生猪咳嗽声

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摘要

This paper extends existing cough identification methods and proposes a real-time method for identifying sick pig cough sounds. The analysis and classification is based on the frequency domain characteristics of the signal, while an improved procedure to extract the reference is presented. This technique evaluates fuzzy c-means clustering to parts of the training signals and provides a frequency content reference that mirrors the characteristics of sick pig cough. The extraction of the reference is performed in such a way that allows for the identification process to be implemented in real-time applications that would speed up the diagnosis and treatment process and improve animal welfare in pig houses. Preliminary results for the evaluation of the algorithm are based on individual sounds of healthy and sick animals acquired in laboratory conditions. An 85% overall correct classification ratio is achieved with 82% of the sick cough sounds being correctly identified.
机译:本文扩展了现有的咳嗽识别方法,并提出了一种实时识别生病猪咳嗽声的方法。分析和分类基于信号的频域特性,同时提出了一种改进的提取参考的程序。该技术评估模糊c均值对部分训练信号的聚类,并提供频率内容参考,以反映病猪咳嗽的特征。参考的提取以允许在实时应用中实施识别过程的方式进行,这将加快诊断和治疗过程并改善猪舍中的动物福利。评估算法的初步结果基于在实验室条件下采集的健康和患病动物的个体声音。正确识别出82%的不适咳嗽声音,可以达到85%的总体正确分类率。

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