2018
DOI: 10.1049/iet-its.2018.5270
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Car detection and classification using cascade model

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Cited by 10 publications
(3 citation statements)
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References 22 publications
(23 reference statements)
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“…Liang et al's data augmentation and pre-training of a CNN using raw images can classify vehicle brands and models with an accuracy rate close to 80%. 3 Classic fault detection methods based on statistical residual evaluation are difficult to detect small deviation faults. Tran et al developed a prediction model using support vector regression to obtain a fault-free reference.…”
Section: Related Workmentioning
confidence: 99%
See 1 more Smart Citation
“…Liang et al's data augmentation and pre-training of a CNN using raw images can classify vehicle brands and models with an accuracy rate close to 80%. 3 Classic fault detection methods based on statistical residual evaluation are difficult to detect small deviation faults. Tran et al developed a prediction model using support vector regression to obtain a fault-free reference.…”
Section: Related Workmentioning
confidence: 99%
“…Due to the large difference in car appearance in images, capturing key information about car pose is critical. Liang et al's data augmentation and pre‐training of a CNN using raw images can classify vehicle brands and models with an accuracy rate close to 80% 3 . Classic fault detection methods based on statistical residual evaluation are difficult to detect small deviation faults.…”
Section: Related Workmentioning
confidence: 99%
“…Image recognition has long been known to be a very difficult problem to solve for computers and computer systems, but humans can perform these tasks with ease. Such noteworthy results achieved by CNNs have been one of the reasons for their widespread use in all sorts of tasks from number plate detection [2] to car classification [3].…”
Section: Introductionmentioning
confidence: 99%