Vehicle logo detection using convolutional neural network and pyramid of histogram of oriented gradients
This paper presents a new method for vehicle logo detection and recognition from images of front and back views of vehicle. The proposed method is a two-stage scheme which combines Convolutional Neural Network (CNN) and Pyramid of Histogram of Gradient (PHOG) features. CNN is applied as the first st...
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th-cmuir.6653943832-533902018-09-04T09:48:36Z Vehicle logo detection using convolutional neural network and pyramid of histogram of oriented gradients Wasin Thubsaeng Aram Kawewong Karn Patanukhom Computer Science This paper presents a new method for vehicle logo detection and recognition from images of front and back views of vehicle. The proposed method is a two-stage scheme which combines Convolutional Neural Network (CNN) and Pyramid of Histogram of Gradient (PHOG) features. CNN is applied as the first stage for candidate region detection and recognition of the vehicle logos. Then, PHOG with Support Vector Machine (SVM) classifier is employed in the second stage to verify the results from the first stage. Experiments are performed with dataset of vehicle images collected from internet. The results show that the proposed method can accurately locate and recognize the vehicle logos with higher robustness in comparison with the other conventional schemes. The proposed methods can provide up to 100% in recall, 96.96% in precision and 99.99% in recognition rate in dataset of 20 classes of the vehicle logo. © 2014 IEEE. 2018-09-04T09:48:35Z 2018-09-04T09:48:35Z 2014-01-01 Conference Proceeding 2-s2.0-84904551094 10.1109/JCSSE.2014.6841838 https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=84904551094&origin=inward http://cmuir.cmu.ac.th/jspui/handle/6653943832/53390 |
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Computer Science Wasin Thubsaeng Aram Kawewong Karn Patanukhom Vehicle logo detection using convolutional neural network and pyramid of histogram of oriented gradients |
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This paper presents a new method for vehicle logo detection and recognition from images of front and back views of vehicle. The proposed method is a two-stage scheme which combines Convolutional Neural Network (CNN) and Pyramid of Histogram of Gradient (PHOG) features. CNN is applied as the first stage for candidate region detection and recognition of the vehicle logos. Then, PHOG with Support Vector Machine (SVM) classifier is employed in the second stage to verify the results from the first stage. Experiments are performed with dataset of vehicle images collected from internet. The results show that the proposed method can accurately locate and recognize the vehicle logos with higher robustness in comparison with the other conventional schemes. The proposed methods can provide up to 100% in recall, 96.96% in precision and 99.99% in recognition rate in dataset of 20 classes of the vehicle logo. © 2014 IEEE. |
format |
Conference Proceeding |
author |
Wasin Thubsaeng Aram Kawewong Karn Patanukhom |
author_facet |
Wasin Thubsaeng Aram Kawewong Karn Patanukhom |
author_sort |
Wasin Thubsaeng |
title |
Vehicle logo detection using convolutional neural network and pyramid of histogram of oriented gradients |
title_short |
Vehicle logo detection using convolutional neural network and pyramid of histogram of oriented gradients |
title_full |
Vehicle logo detection using convolutional neural network and pyramid of histogram of oriented gradients |
title_fullStr |
Vehicle logo detection using convolutional neural network and pyramid of histogram of oriented gradients |
title_full_unstemmed |
Vehicle logo detection using convolutional neural network and pyramid of histogram of oriented gradients |
title_sort |
vehicle logo detection using convolutional neural network and pyramid of histogram of oriented gradients |
publishDate |
2018 |
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https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=84904551094&origin=inward http://cmuir.cmu.ac.th/jspui/handle/6653943832/53390 |
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