Freshness recognition and remaining shelf life prediction of banana based on attention Temporal Convolutional Network

ObjectiveTo address the issue of traditional machine learning algorithms (BP, SVM) struggling to effectively extract features from time series data, which leads to subpar model recognition and prediction performance, and aim to minimize the freshness loss of fresh fruits during the distribution proc...

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Published inShipin Yu Jixie Vol. 40; no. 11; pp. 153 - 159
Main Authors LI Xin, ZHU Lei, ZHANG Yuan, DU Yanping, XING Xiao
Format Journal Article
LanguageEnglish
Published The Editorial Office of Food and Machinery 01.11.2024
Subjects
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ISSN1003-5788
DOI10.13652/j.spjx.1003.5788.2024.80299

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Abstract ObjectiveTo address the issue of traditional machine learning algorithms (BP, SVM) struggling to effectively extract features from time series data, which leads to subpar model recognition and prediction performance, and aim to minimize the freshness loss of fresh fruits during the distribution process.MethodsTaking bananas as the research subject, established a banana freshness recognition model (ECA-TCN) by combining Time Convolutional Networks (TCN) with Efficient Channel Attention Networks (ECA-NET) and conduct simulation tests.ResultsThe recognition accuracies for BP, SVM, TCN, and ECA-TCN were 84.89%, 85.16%, 97.83%, and 99.03%, respectively.ConclusionThe experimental method demonstrates superior performance in recognizing the freshness of bananas.
AbstractList ObjectiveTo address the issue of traditional machine learning algorithms (BP, SVM) struggling to effectively extract features from time series data, which leads to subpar model recognition and prediction performance, and aim to minimize the freshness loss of fresh fruits during the distribution process.MethodsTaking bananas as the research subject, established a banana freshness recognition model (ECA-TCN) by combining Time Convolutional Networks (TCN) with Efficient Channel Attention Networks (ECA-NET) and conduct simulation tests.ResultsThe recognition accuracies for BP, SVM, TCN, and ECA-TCN were 84.89%, 85.16%, 97.83%, and 99.03%, respectively.ConclusionThe experimental method demonstrates superior performance in recognizing the freshness of bananas.
Author XING Xiao
ZHANG Yuan
DU Yanping
ZHU Lei
LI Xin
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StartPage 153
SubjectTerms attention mechanism
bananas
freshness
remaining shelf-life forecasting
sensor arrays
tcn
Title Freshness recognition and remaining shelf life prediction of banana based on attention Temporal Convolutional Network
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