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      Improved Faster R-CNN Traffic Sign Detection Based on a Second Region of Interest and Highly Possible Regions Proposal Network

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          Abstract

          Traffic sign detection systems provide important road control information for unmanned driving systems or auxiliary driving. In this paper, the Faster region with a convolutional neural network (R-CNN) for traffic sign detection in real traffic situations has been systematically improved. First, a first step region proposal algorithm based on simplified Gabor wavelets (SGWs) and maximally stable extremal regions (MSERs) is proposed. In this way, the region proposal a priori information is obtained and will be used for improving the Faster R-CNN. This part of our method is named as the highly possible regions proposal network (HP-RPN). Second, in order to solve the problem that the Faster R-CNN cannot effectively detect small targets, a method that combines the features of the third, fourth, and fifth layers of VGG16 to enrich the features of small targets is proposed. Third, the secondary region of interest method to enhance the feature of detection objects and improve the classification capability of the Faster R-CNN is proposed. Finally, a method of merging the German traffic sign detection benchmark (GTSDB) and Chinese traffic sign dataset (CTSD) databases into one larger database to increase the number of database samples is proposed. Experimental results show that our method improves the detection performance, especially for small targets.

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          You Only Look Once: unified, real-time object detection

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            Fast r-cnn

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              Face detection using deep learning: An improved faster RCNN approach

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                Author and article information

                Journal
                Sensors (Basel)
                Sensors (Basel)
                sensors
                Sensors (Basel, Switzerland)
                MDPI
                1424-8220
                17 May 2019
                May 2019
                : 19
                : 10
                : 2288
                Affiliations
                Department of Mechanical Engineering, College of Field Engineering and Army Engineering University, Nanjing 210007, China; shaofaming@ 123456163.com (F.S.); Beilimeng1992@ 123456163.com (F.M.); zhu_jingwei@ 123456sohu.com (J.Z.); dyhkxydfbb@ 123456163.com (D.W.); dinajy2001@ 123456126.com (J.D.)
                Author notes
                [* ]Correspondence: xqwang168@ 123456126.com ; Tel.: +86-185-4985-4591
                Author information
                https://orcid.org/0000-0002-6281-2990
                https://orcid.org/0000-0002-1511-9499
                Article
                sensors-19-02288
                10.3390/s19102288
                6567367
                31108980
                fb3d0c46-bad4-4fc4-8c7d-2f2069908120
                © 2019 by the authors.

                Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license ( http://creativecommons.org/licenses/by/4.0/).

                History
                : 10 April 2019
                : 14 May 2019
                Categories
                Article

                Biomedical engineering
                simplified gabor filters,faster r-cnn,secondary regions of interest,highly possible regions proposal

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