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Forward Vehicle Detection Based on Incremental Learning and Fast R-CNN - 2017

Forward Vehicle Detection Based On Incremental Learning And Fast R-Cnn

Research Paper on Forward Vehicle Detection Based On Incremental Learning And Fast R-Cnn

Research Area:  Machine Learning

Abstract:

Recently the research of vehicle detection is mainly through machine learning, but it still has low detection accuracy problem. With the study of researchers, using deep learning methods of vehicle detection becomes hot. In this paper, a selective search method and a target detection model based on Fast R-CNN are used to detect vehicle. The strategy optimizes the model by preprocessing the sample image and the new network structure. Firstly, the experiment uses the public KITTI data set and self-collected BUU-T2Y data set, respectively, for training validation and test. Secondly, based on the original data set, the experiments go on through incremental learning, combining the KITTI dataset with the BUU-T2Y dataset. The experimental results show that the proposed method is superior to the result of multi-feature and classifier detection in terms of accuracy. To a large extent, the proposed method solved the problem of missing vehicle for detection and improved the accuracy of vehicle testing and robustness.

Keywords:  
Vehicle Detection
Incremental Learning
Fast R-Cnn
accurate rate
image
Machine Learning
Deep Learning

Author(s) Name:  Kaijing Shi; Hong Bao; Nan Ma

Journal name:  

Conferrence name:  13th International Conference on Computational Intelligence and Security (CIS)

Publisher name:  IEEE

DOI:  10.1109/CIS.2017.00024

Volume Information: