Category-Aware Transformer Network for Better Human-Object Interaction Detection
Leizhen Dong, Zhimin Li, Kunlun Xu, Zhijun Zhang, Luxin Yan, Sheng Zhong, Xu Zou
Abstract
Human-Object Interactions (HOI) detection, which aims to localize a human and a relevant object while recognizing their interaction, is crucial for understanding a still image. Recently, tranformer-based models have significantly advanced the progress of HOI detection. However, the capability of these models has not been fully explored since the Object Query of the model is always simply initialized as just zeros, which would affect the performance. In this paper, we try to study the issue of promoting transformer-based HOI detectors by initializing the Object Query with category-aware semantic information. To this end, we innovatively propose the Category-Aware Transformer Network (CATN). Specifically, the Object Query would be initialized via category priors represented by an external object detection model to yield a better performance. Moreover, such category priors can be further used for enhancing the representation ability of features via the attention mechanism. We have firstly verified our idea via the Oracle experiment by initializing the Object Query with the groundtruth category information. And then extensive experiments have been conducted to show that a HOI detection model equipped with our idea outperforms the baseline by a large margin to achieve a new state-of-the-art result.
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Install the CLIlune papers fulltext 49ef52ec-4437-494a-83e5-282cc5eab37dCited by top-tier papers17
- Neural-Logic Human-Object Interaction DetectionLiulei Li, Jianan Wei, Wenguan Wang, Yi YangNeurIPS 2023 · 54 citations
- Human-Object Interaction Detection Collaborated with Large Relation-driven Diffusion ModelsLiulei Li, Wenguan Wang, Yi YangNeurIPS 2024 · 29 citations
- Video Action Recognition with Attentive Semantic UnitsYifei Chen, Dapeng Chen, Ruijin Liu, Hao Li et al.ICCV 2023 · 18 citations
- Dual-Prior Augmented Decoding Network for Long Tail Distribution in HOI DetectionJiayi Gao, Kongming Liang, Tao Wei, Wei Chen et al.AAAI 2024 · 14 citations
- Exploring Self- and Cross-Triplet Correlations for Human-Object Interaction DetectionWeibo Jiang, Weihong Ren, Jiandong Tian, Liangqiong Qu et al.AAAI 2024 · 11 citations
Builds on14
- Learning Transferable Visual Models From Natural Language SupervisionAlec Radford, Jong Wook Kim, Chris Hallacy, Aditya Ramesh et al.ICML 2021 · 47,906 citations
- Pose-Aware Multi-Level Feature Network for Human Object Interaction DetectionBo Wan, Desen Zhou, Yongfei Liu, Rongjie Li et al.ICCV 2019 · 224 citations
- Mining the Benefits of Two-stage and One-stage HOI DetectionAixi Zhang, Yue Liao, Si Liu, Miao Lu et al.NeurIPS 2021 · 218 citations
- Relation Parsing Neural Network for Human-Object Interaction DetectionPenghao Zhou, Mingmin ChiICCV 2019 · 155 citations
- Improving Human-Object Interaction Detection via Phrase Learning and Label CompositionZhimin Li, Cheng Zou, Yu Zhao, Boxun Li et al.AAAI 2022 · 43 citations
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