2022
DOI: 10.1016/j.est.2022.104177
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Fault diagnosis method for lithium-ion batteries in electric vehicles based on isolated forest algorithm

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Cited by 72 publications
(19 citation statements)
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References 28 publications
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“…Zhou et al introduced time series data mining technology into spacecraft telemetry data analysis and processing, system state feature extraction, fault diagnosis and identification, to promote the development of spacecraft fault diagnosis technology, improve the reliability and safety of satellite orbit operation, and extend the service life of satellite, which has great significance, which also proves that data mining in the field of spacecraft fault diagnosis has broad application prospects [14]. For association rule algorithm, Jiang et al combined with the fuzzy clustering method and made it possible that association rule algorithm can not only mine Boolean attribute rules but can also be extended to the field of mining numerical properties [15]. For the decision tree algorithm, an improved algorithm combined with the ant colony algorithm is proposed to fundamentally improve the efficiency of the decision tree.…”
Section: Literature Reviewmentioning
confidence: 99%
“…Zhou et al introduced time series data mining technology into spacecraft telemetry data analysis and processing, system state feature extraction, fault diagnosis and identification, to promote the development of spacecraft fault diagnosis technology, improve the reliability and safety of satellite orbit operation, and extend the service life of satellite, which has great significance, which also proves that data mining in the field of spacecraft fault diagnosis has broad application prospects [14]. For association rule algorithm, Jiang et al combined with the fuzzy clustering method and made it possible that association rule algorithm can not only mine Boolean attribute rules but can also be extended to the field of mining numerical properties [15]. For the decision tree algorithm, an improved algorithm combined with the ant colony algorithm is proposed to fundamentally improve the efficiency of the decision tree.…”
Section: Literature Reviewmentioning
confidence: 99%
“…Isolated forest is an unsupervised learning algorithm whose core principle is to detect outliers by constructing random forests [10].In the training process of isolated forest, each isolated tree randomly selects part of the sample, and different from KMeans, DBSCAN and other algorithms, isolated forest does not need to calculate the indicators related to distance and density, which can greatly improve the speed and reduce the system overhead.Because each tree is generated independently, it can be deployed on large-scale distributed systems to speed up computation.…”
Section: Isolation Forest Algorithmmentioning
confidence: 99%
“…[ 235 ] Liao and co‐workers propose a fault diagnosis method for power lithium batteries based on isolated forest algorithm. [ 236 ] The variational mode decomposition algorithm is used to process the voltage data collected by BMS. Static components (highly correlated with aging state inconsistency) and dynamic components (mainly reflecting anomaly information) are decoupled.…”
Section: Multiscale Model Applicationmentioning
confidence: 99%