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Vehicle Color Recognition using Convolutional Neural Network

2015-10-26 · Reza Fuad Rachmadi, I Ketut Eddy Purnama

Vehicle color information is one of the important elements in ITS (Intelligent Traffic System). In this paper, we present a vehicle color recognition method using convolutional neural network (CNN). Naturally, CNN is designed to learn classification method based on shape information, but we proved that CNN can also learn classification based on color distribution. In our method, we convert the input image to two different color spaces, HSV and CIE Lab, and run it to some CNN architecture. The training process follow procedure introduce by Krizhevsky, that learning rate is decreasing by factor of 10 after some iterations. To test our method, we use publicly vehicle color recognition dataset provided by Chen. The results, our model outperform the original system provide by Chen with 2% higher overall accuracy.

📄 PDF Abstract BibTeX arXiv:1510.07391

Code (8)

HoangTrinh/Vehicle_ReID_using_fusion_of_multi_features tf
Recolip/pytorch_model pytorch
Spectra456/Color-Recognition-CNN tf
i-am-g2/VehicleColorRecognition pytorch
jasonqhuang/Color_CNN tf
jwhabi/Vehicle-Color-Identification
srihari-humbarwadi/Vehicle-Color-Recognition-using-Convolutional-Neural-Network tf
tomjerrygithub/Pytorch_VehicleColorRecognition pytorch

Tasks

General ClassificationVehicle Color Recognition

Methods 이 논문이 사용한 방법론

1D CNN 1D Convolutional Neural Networks are similar to well known and more established 2D Convolutional Neural Networks. 1D Convolutional Neural Networks are used mainly used on text and…

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