MT-ORL: Multi-Task Occlusion Relationship Learning
Panhe Feng, Qi She, Lei Zhu, Jiaxin Li, Lin Zhang, Zijian Feng, Changhu Wang, Chunpeng Li, Xuejing Kang, Anlong Ming
Abstract
Retrieving occlusion relation among objects in a single image is challenging due to sparsity of boundaries in image. We observe two key issues in existing works: firstly, lack of an architecture which can exploit the limited amount of coupling in the decoder stage between the two subtasks, namely occlusion boundary extraction and occlusion orientation prediction, and secondly, improper representation of occlusion orientation. In this paper, we propose a novel architecture called Occlusion-shared and Path-separated Network (OPNet), which solves the first issue by exploiting rich occlusion cues in shared high-level features and structured spatial information in task-specific low-level features. We then design a simple but effective orthogonal occlusion representation (OOR) to tackle the second issue. Our method surpasses the state-of-the-art methods by 6.1%/8.3% Boundary-AP and 6.5%/10% Orientation-AP on standard PIOD/BSDS ownership datasets. Code is available at https://github.com/fengpanhe/MT-ORL .
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Builds on7
- Occlusion-Shared and Feature-Separated Network for Occlusion Relationship ReasoningRui Lu, Feng Xue, Menghan Zhou, Anlong Ming et al.ICCV 2019 · 34 citations
- Self-Supervised Scene De-OcclusionXiaohang Zhan, Xingang Pan, Bo Dai, Ziwei Liu et al.CVPR 2020
- Multi-Scale Interactive Network for Salient Object DetectionYouwei Pang, Xiaoqi Zhao, Lihe Zhang, Huchuan LuCVPR 2020
- Taking a Deeper Look at Co-Salient Object DetectionDeng-Ping Fan, Zheng Lin, Ge-Peng Ji, Dingwen Zhang et al.CVPR 2020
- Predicting Sharp and Accurate Occlusion Boundaries in Monocular Depth Estimation Using Displacement FieldsMichaël Ramamonjisoa, Yuming Du, Vincent LepetitCVPR 2020
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