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Individual dairy cow identification based on lightweight convolutional neural network
by
Sun, Yu
, Mu, Ye
, Chen, Lin
, Li, Shijun
, Fu, Lili
, Li, Ji
, Gong, He
in
Accuracy
/ Agricultural engineering
/ Algorithms
/ Analysis
/ Animals
/ Artificial neural networks
/ Automation
/ Biology and Life Sciences
/ Cattle
/ Cattle - anatomy & histology
/ Cattle - physiology
/ Collaboration
/ Computer and Information Sciences
/ Dairy cattle
/ Dairy farming
/ Dairying - methods
/ Datasets
/ Deep learning
/ Engineering research
/ Environmental engineering
/ Farms
/ Feature extraction
/ Feature recognition
/ Female
/ Identification and classification
/ Image enhancement
/ Image Processing, Computer-Assisted - methods
/ Information technology
/ Internet of Things
/ Lightweight
/ Livestock
/ Mathematical models
/ Medicine and Health Sciences
/ Model accuracy
/ Neural networks
/ Neural Networks, Computer
/ Object recognition
/ Parameters
/ Radio frequency identification
/ Research and Analysis Methods
/ Research methodology
/ Sample size
/ Short circuits
/ Vision systems
/ Weight reduction
2021
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Individual dairy cow identification based on lightweight convolutional neural network
by
Sun, Yu
, Mu, Ye
, Chen, Lin
, Li, Shijun
, Fu, Lili
, Li, Ji
, Gong, He
in
Accuracy
/ Agricultural engineering
/ Algorithms
/ Analysis
/ Animals
/ Artificial neural networks
/ Automation
/ Biology and Life Sciences
/ Cattle
/ Cattle - anatomy & histology
/ Cattle - physiology
/ Collaboration
/ Computer and Information Sciences
/ Dairy cattle
/ Dairy farming
/ Dairying - methods
/ Datasets
/ Deep learning
/ Engineering research
/ Environmental engineering
/ Farms
/ Feature extraction
/ Feature recognition
/ Female
/ Identification and classification
/ Image enhancement
/ Image Processing, Computer-Assisted - methods
/ Information technology
/ Internet of Things
/ Lightweight
/ Livestock
/ Mathematical models
/ Medicine and Health Sciences
/ Model accuracy
/ Neural networks
/ Neural Networks, Computer
/ Object recognition
/ Parameters
/ Radio frequency identification
/ Research and Analysis Methods
/ Research methodology
/ Sample size
/ Short circuits
/ Vision systems
/ Weight reduction
2021
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Individual dairy cow identification based on lightweight convolutional neural network
by
Sun, Yu
, Mu, Ye
, Chen, Lin
, Li, Shijun
, Fu, Lili
, Li, Ji
, Gong, He
in
Accuracy
/ Agricultural engineering
/ Algorithms
/ Analysis
/ Animals
/ Artificial neural networks
/ Automation
/ Biology and Life Sciences
/ Cattle
/ Cattle - anatomy & histology
/ Cattle - physiology
/ Collaboration
/ Computer and Information Sciences
/ Dairy cattle
/ Dairy farming
/ Dairying - methods
/ Datasets
/ Deep learning
/ Engineering research
/ Environmental engineering
/ Farms
/ Feature extraction
/ Feature recognition
/ Female
/ Identification and classification
/ Image enhancement
/ Image Processing, Computer-Assisted - methods
/ Information technology
/ Internet of Things
/ Lightweight
/ Livestock
/ Mathematical models
/ Medicine and Health Sciences
/ Model accuracy
/ Neural networks
/ Neural Networks, Computer
/ Object recognition
/ Parameters
/ Radio frequency identification
/ Research and Analysis Methods
/ Research methodology
/ Sample size
/ Short circuits
/ Vision systems
/ Weight reduction
2021
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Individual dairy cow identification based on lightweight convolutional neural network
Journal Article
Individual dairy cow identification based on lightweight convolutional neural network
2021
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Overview
In actual farms, individual livestock identification technology relies on large models with slow recognition speeds, which seriously restricts its practical application. In this study, we use deep learning to recognize the features of individual cows. Alexnet is used as a skeleton network for a lightweight convolutional neural network that can recognise individual cows in images with complex backgrounds. The model is improved for multiple multiscale convolutions of Alexnet using the short-circuit connected BasicBlock to fit the desired values and avoid gradient disappearance or explosion. An improved inception module and attention mechanism are added to extract features at multiple scales to enhance the detection of feature points. In experiments, side-view images of 13 cows were collected. The proposed method achieved 97.95% accuracy in cow identification with a single training time of only 6 s, which is one-sixth that of the original Alexnet. To verify the validity of the model, the dataset and experimental parameters were kept constant and compared with the results of Vgg16, Resnet50, Mobilnet V2 and GoogLenet. The proposed model ensured high accuracy while having the smallest parameter size of 6.51 MB, which is 1.3 times less than that of the Mobilnet V2 network, which is famous for its light weight. This method overcomes the defects of traditional methods, which require artificial extraction of features, are often not robust enough, have slow recognition speeds, and require large numbers of parameters in the recognition model. The proposed method works with images with complex backgrounds, making it suitable for actual farming environments. It also provides a reference for the identification of individual cows in images with complex backgrounds.
Publisher
Public Library of Science,Public Library of Science (PLoS)
Subject
/ Analysis
/ Animals
/ Cattle
/ Cattle - anatomy & histology
/ Computer and Information Sciences
/ Datasets
/ Farms
/ Female
/ Identification and classification
/ Image Processing, Computer-Assisted - methods
/ Medicine and Health Sciences
/ Radio frequency identification
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