Single-Shot Refinement Neural Network for Object Detection
Shifeng Zhang1,2; Longyin Wen3; Xiao Bian3; Zhen Lei1,2; Stan Z. Li1,2
2018
会议名称IEEE Conference on Computer Vision and Pattern Recognition
会议日期2018
会议地点美国盐湖城
摘要

For object detection, the two-stage approach (e.g., Faster R-CNN) has been achieving the highest accuracy, whereas the one-stage approach (e.g., SSD) has the advantage of high efficiency. To inherit the merits of both while overcoming their disadvantages, in this paper, we propose a novel single-shot based detector, called RefineDet, that achieves better accuracy than two-stage methods and maintains comparable efficiency of one-stage methods. RefineDet consists of two inter-connected modules, namely, the anchor refinement module and the object detection module. Specifically, the former aims to (1) filter out negative anchors to reduce search space for the classifier, and (2) coarsely adjust the locations and sizes of anchors to provide better initialization for the subsequent regressor. The latter module takes the refined anchors as the input from the former to further improve the regression and predict multi-class label. Meanwhile, we design a transfer connection block to transfer the features in the anchor refinement module to predict locations, sizes and class labels of objects in the object detection module. The multi-task loss function enables us to train the whole network in an end-to-end way. Extensive experiments on PASCAL VOC 2007, PASCAL VOC 2012, and MS COCO demonstrate that RefineDet achieves state-of-the-art detection accuracy with high efficiency. 

收录类别EI
文献类型会议论文
条目标识符http://ir.ia.ac.cn/handle/173211/23071
专题多模态人工智能系统全国重点实验室_生物识别与安全技术
通讯作者Zhen Lei
作者单位1.Institute of Automation Chinese Academy of Sciences
2.University of Chinese Academy of Sciences
3.GE
第一作者单位中国科学院自动化研究所
通讯作者单位中国科学院自动化研究所
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Shifeng Zhang,Longyin Wen,Xiao Bian,et al. Single-Shot Refinement Neural Network for Object Detection[C],2018.
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