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基于VGGNet颜色识别的车辆检索系统设计
引用本文:顾思思 扈乐华. 基于VGGNet颜色识别的车辆检索系统设计[J]. 广东电脑与电讯, 2020, 1(7): 17-20
作者姓名:顾思思 扈乐华
作者单位:湖南科技学院 电子与信息工程学院
摘    要:


Design of Vehicle Retrieval System Based on VGGNet Color Recognition
GU Si-si HU Le-hua. Design of Vehicle Retrieval System Based on VGGNet Color Recognition[J]. Computer & Telecommunication, 2020, 1(7): 17-20
Authors:GU Si-si HU Le-hua
Abstract:The Convolution Neural Network(CNN) in Deep Learning has a strong anti-jamming ability for image translation, rota-tion and other transformations. Compared with the traditional vehicle recognition technology, it can extract deeper and richer imageinformation. Based on the VGGNet structure and simulating the order of human eyes' perception of vehicle characteristics, this pa-per designs a hierarchical retrieval system for vehicle image database. Firstly, a CNN which can recognize eight kinds of colors isconstructed and trained to recognize the color of the target vehicle. Then, SIFT and LBP features are combined to match and retrievethe same color candidate vehicle database. The hierarchical retrieval mode of the system can effectively reduce the scope of retrievaland improve the efficiency of retrieval. The fusion of multi features can also guarantee the extraction of enough image informationand ensure the accuracy of retrieval.
Keywords:VGGNet   SIFT   LBP   hierarchical search  
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