Harmonious Feature Learning for Interactive Hand-Object Pose Estimation
Zhifeng Lin, Changxing Ding, Huan Yao, Zengsheng Kuang, Shaoli Huang
摘要
Joint hand and object pose estimation from a single image is extremely challenging as serious occlusion often occurs when the hand and object interact. Existing approaches typically first extract coarse hand and object features from a single backbone, then further enhance them with reference to each other via interaction modules. However, these works usually ignore that the hand and object are competitive in feature learning, since the backbone takes both of them as foreground and they are usually mutually occluded. In this paper, we propose a novel Harmonious Feature Learning Network (HFL-Net). HFL-Net introduces a new framework that combines the advantages of single-and double-stream backbones: it shares the parameters of the low-and high-level convolutional layers of a common ResNet-50 model for the hand and object, leaving the middle-level layers unshared. This strategy enables the hand and the object to be extracted as the sole targets by the middle-level layers, avoiding their competition in feature learning. The shared high-level layers also force their features to be harmonious, thereby facilitating their mutual feature enhancement. In particular, we propose to enhance the feature of the hand via concatenation with the feature in the same location from the object stream. A subsequent self-attention layer is adopted to deeply fuse the concatenated feature. Experimental results show that our proposed approach consistently outperforms state-of-theart methods on the popular HO3D and Dex-YCB databases. Notably, the performance of our model on hand pose estimation even surpasses that of existing works that only perform the single-hand pose estimation task. Code is available at https://github.com/lzfff12/HFL-Net .
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引用它的顶会 Paper13
- Hamba: Single-view 3D Hand Reconstruction with Graph-guided Bi-Scanning MambaHaoye Dong, Aviral Chharia, Wenbo Gou, Francisco Vicente Carrasco 等NeurIPS 2024 · 被引用 73 次
- HOISDF: Constraining 3D Hand-Object Pose Estimation with Global Signed Distance FieldsHaozhe Qi, Chen Zhao, Mathieu Salzmann, Alexander MathisCVPR 2024 · 被引用 18 次
- Learning Dense Hand Contact Estimation from Imbalanced DataDaniel Sungho Jung, Kyoung Mu LeeNeurIPS 2025 · 被引用 14 次
- Hand-Centric Motion Refinement for 3D Hand-Object Interaction via Hierarchical Spatial-Temporal ModelingYuze Hao, Jianrong Zhang, Tao Zhuo, Fuan Wen 等AAAI 2024 · 被引用 7 次
- Generalizable Hand-Object Modeling from Monocular RGB Images via 3D GaussiansXingyu Liu, Pengfei Ren, Qi Qi, Haifeng Sun 等NeurIPS 2025 · 被引用 5 次
它引用的顶会 Paper21
- Mesh GraphormerKevin Lin, Lijuan Wang, Zicheng LiuICCV 2021 · 被引用 399 次
- Reconstructing Hand-Object Interactions in the WildZhe Cao, Ilija Radosavovic, Angjoo Kanazawa, Jitendra MalikICCV 2021 · 被引用 184 次
- EPro-PnP: Generalized End-to-End Probabilistic Perspective-n-Points for Monocular Object Pose EstimationHansheng Chen, Pichao Wang, Fan Wang, Wei Tian 等CVPR 2022 · 被引用 175 次
- CPF: Learning a Contact Potential Field to Model the Hand-Object InteractionLixin Yang, Xinyu Zhan, Kailin Li, Wenqiang Xu 等ICCV 2021 · 被引用 170 次
- Keypoint Transformer: Solving Joint Identification in Challenging Hands and Object Interactions for Accurate 3D Pose EstimationShreyas Hampali, Sayan Deb Sarkar, Mahdi Rad, Vincent LepetitCVPR 2022 · 被引用 155 次
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