Beta R-CNN: Looking into Pedestrian Detection from Another Perspective
Zixuan Xu, Banghuai Li, Ye Yuan, Anhong Dang
摘要
Recently significant progress has been made in pedestrian detection, but it remains challenging to achieve high performance in occluded and crowded scenes. It could be attributed mostly to the widely used representation of pedestrians, i.e ., 2D axis-aligned bounding box, which just describes the approximate location and size of the object. Bounding box models the object as a uniform distribution within the boundary, making pedestrians indistinguishable in occluded and crowded scenes due to much noise. To eliminate the problem, we propose a novel representation based on 2D beta distribution, named Beta Representation. It pictures a pedestrian by explicitly constructing the relationship between full-body and visible boxes, and emphasizes the center of visual mass by assigning different probability values to pixels. As a result, Beta Representation is much better for distinguishing highly-overlapped instances in crowded scenes with a new NMS strategy named BetaNMS. What’s more, to fully exploit Beta Representation, a novel pipeline Beta R-CNN equipped with BetaHead and BetaMask is proposed, leading to high detection performance in occluded and crowded scenes.
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它引用的顶会 Paper4
- Mask-Guided Attention Network for Occluded Pedestrian DetectionYanwei Pang, Jin Xie, Muhammad Haris Khan, Rao Muhammad Anwer 等ICCV 2019 · 被引用 216 次
- PedHunter: Occlusion Robust Pedestrian Detector in Crowded ScenesCheng Chi, Shifeng Zhang, Junliang Xing, Zhen Lei 等AAAI 2020 · 被引用 118 次
- NMS by Representative Region: Towards Crowded Pedestrian Detection by Proposal PairingXin Huang, Zheng Ge, Zequn Jie, Osamu YoshieCVPR 2020
- Detection in Crowded Scenes: One Proposal, Multiple PredictionsXuangeng Chu, Anlin Zheng, Xiangyu Zhang, Jian SunCVPR 2020
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