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Study on a Pig Vocalization Classification Method Based on Multi-Feature Fusion

delete2024-01-05
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OA
AI
Y
Yuting Hou
Q
Qifeng Li
Z
Zuchao Wang
T
Tonghai Liu
Y
Yuxiang He
李海燕 封面图
李海燕 (Haiyan Li)
Z
Zhiyu Ren
X
Xiaoli Guo
G
Gan Yang
Y
Yu Liu
L
Ligen Yu *
DOI:10.3390/s24020313delete
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摘要

摘要

En 中文
To improve the classification of pig vocalization using vocal signals and improve recognition accuracy, a pig vocalization classification method based on multi-feature fusion is proposed in this study. With the typical vocalization of pigs in large-scale breeding houses as the research object, short-time energy, frequency centroid, formant frequency and first-order difference, and Mel frequency cepstral coefficient and first-order difference were extracted as the fusion features. These fusion features were improved using principal component analysis. A pig vocalization classification model with a BP neural network optimized based on the genetic algorithm was constructed. The results showed that using the improved features to recognize pig grunting, squealing, and coughing, the average recognition accuracy was 93.2%; the recognition precisions were 87.9%, 98.1%, and 92.7%, respectively, with an average of 92.9%; and the recognition recalls were 92.0%, 99.1%, and 87.4%, respectively, with an average of 92.8%, which indicated that the proposed pig vocalization classification method had good recognition precision and recall, and could provide a reference for pig vocalization information feedback and automatic recognition.
Keyword:
pig vocalization
multi-feature fusion
principal component analysis
classification recognition
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期刊

Sensors 封面图
Sensors
IF:
3.5
论文数:
7.2W
被引数:
20.9W

机构

C
China University of Geosciences
学者数:
3.7W
论文数: 2.8W
被引数: 4.3W
T
Tianjin Agricultural University
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1.8K
论文数: 985
被引数: 1.3K
B
beijing academy of agriculture & forestry sciences (baafs)
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4.2K
论文数: 3.1K
被引数: 6
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引用论文

引用论文

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