Language-Bridged Spatial-Temporal Interaction for Referring Video Object Segmentation
Zihan Ding, Tianrui Hui, Junshi Huang, Xiaoming Wei, Jizhong Han, Si Liu
Abstract
Referring video object segmentation aims to predict foreground labels for objects referred by natural language expressions in videos. Previous methods either depend on 3D ConvNets or incorporate additional 2D ConvNets as encoders to extract mixed spatial-temporal features. However, these methods suffer from spatial misalignment or false distractors due to delayed and implicit spatial-temporal interaction occurring in the decoding phase. To tackle these limitations, we propose a Language-Bridged Duplex Transfer (LBDT) module which utilizes language as an intermediary bridge to accomplish explicit and adaptive spatial-temporal interaction earlier in the encoding phase. Concretely, cross-modal attention is performed among the temporal encoder, referring words and the spatial encoder to aggregate and transfer language-relevant motion and appearance information. In addition, we also propose a Bilateral Channel Activation (BCA) module in the decoding phase for further denoising and highlighting the spatial-temporal consistent features via channel-wise activation. Extensive experiments show our method achieves new state-of-the-art performances on four popular benchmarks with 6.8% and 6.9% absolute AP gains on A2D Sentences and J-HMDB Sentences respectively, while consuming around 7× less computational overhead <sup xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink">1</sup> <sup xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink">1</sup> https://github.com/dzh19990407/LBDT.
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Install the CLIlune papers fulltext ffcf26b2-d3c1-4fcf-9d52-2a7ccdce8089Cited by top-tier papers36
- MOSE: A New Dataset for Video Object Segmentation in Complex ScenesHenghui Ding, Chang Liu, Shuting He, Xudong Jiang et al.ICCV 2023 · 267 citations
- MeViS: A Large-scale Benchmark for Video Segmentation with Motion ExpressionsHenghui Ding, Chang Liu, Shuting He, Xudong Jiang et al.ICCV 2023 · 242 citations
- One Token to Seg Them All: Language Instructed Reasoning Segmentation in VideosZechen Bai, Tong He, Haiyang Mei, Pichao Wang et al.NeurIPS 2024 · 147 citations
- SOC: Semantic-Assisted Object Cluster for Referring Video Object SegmentationZhuoyan Luo, Yicheng Xiao, Yong Liu, Shuyan Li et al.NeurIPS 2023 · 89 citations
- OnlineRefer: A Simple Online Baseline for Referring Video Object SegmentationDongming Wu, Tiancai Wang, Yuang Zhang, Xiangyu Zhang et al.ICCV 2023 · 82 citations
Builds on16
- Motion-Attentive Transition for Zero-Shot Video Object SegmentationTianfei Zhou, Shunzhou Wang, Yi Zhou, Yazhou Yao et al.AAAI 2020 · 210 citations
- Motion Guided Attention for Video Salient Object DetectionHaofeng Li, Guanqi Chen, Guanbin Li, Yizhou YuICCV 2019 · 200 citations
- CLIP-It! Language-Guided Video SummarizationMedhini Narasimhan, Anna Rohrbach, Trevor DarrellNeurIPS 2021 · 196 citations
- Semi-Supervised Video Salient Object Detection Using Pseudo-LabelsPengxiang Yan, Guanbin Li, Yuan Xie, Zhen Li et al.ICCV 2019 · 134 citations
- Asymmetric Cross-Guided Attention Network for Actor and Action Video Segmentation From Natural Language QueryHao Wang, Cheng Deng, Junchi Yan, Dacheng TaoICCV 2019 · 89 citations
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