Faster R-CNN: Towards Real-Time Object Detection with Region Proposal Networks

计算机科学 帕斯卡(单位) 目标检测 卷积神经网络 瓶颈 人工智能 帧速率 计算 帧(网络) 模式识别(心理学) 计算机视觉 算法 计算机网络 嵌入式系统 程序设计语言
作者
Shaoqing Ren,Kaiming He,Ross Girshick,Jian Sun
出处
期刊:Cornell University - arXiv [Cornell University]
卷期号:28: 91-99 被引量:18231
标识
DOI:10.48550/arxiv.1506.01497
摘要

State-of-the-art object detection networks depend on region proposal algorithms to hypothesize object locations. Advances like SPPnet and Fast R-CNN have reduced the running time of these detection networks, exposing region proposal computation as a bottleneck. In this work, we introduce a Region Proposal Network (RPN) that shares full-image convolutional features with the detection network, thus enabling nearly cost-free region proposals. An RPN is a fully convolutional network that simultaneously predicts object bounds and objectness scores at each position. The RPN is trained end-to-end to generate high-quality region proposals, which are used by Fast R-CNN for detection. We further merge RPN and Fast R-CNN into a single network by sharing their convolutional features---using the recently popular terminology of neural networks with 'attention' mechanisms, the RPN component tells the unified network where to look. For the very deep VGG-16 model, our detection system has a frame rate of 5fps (including all steps) on a GPU, while achieving state-of-the-art object detection accuracy on PASCAL VOC 2007, 2012, and MS COCO datasets with only 300 proposals per image. In ILSVRC and COCO 2015 competitions, Faster R-CNN and RPN are the foundations of the 1st-place winning entries in several tracks. Code has been made publicly available.
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