Efficient Regional Memory Network for Video Object Segmentation
Haozhe Xie, Hongxun Yao, Shangchen Zhou, Shengping Zhang, Wenxiu Sun
Abstract
Recently, several Space-Time Memory based networks have shown that the object cues (e.g. video frames as well as the segmented object masks) from the past frames are useful for segmenting objects in the current frame. However, these methods exploit the information from the memory by global-to-global matching between the current and past frames, which lead to mismatching to similar objects and high computational complexity. To address these problems, we propose a novel local-to-local matching solution for semi-supervised VOS, namely Regional Memory Network (RMNet). In RMNet, the precise regional memory is constructed by memorizing local regions where the target objects appear in the past frames. For the current query frame, the query regions are tracked and predicted based on the optical flow estimated from the previous frame. The proposed local-to-local matching effectively alleviates the ambiguity of similar objects in both memory and query frames, which allows the information to be passed from the regional memory to the query region efficiently and effectively. Experimental results indicate that the proposed RM-Net performs favorably against state-of-the-art methods on the DAVIS and YouTube-VOS datasets.
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Cited by top-tier papers41
- Rethinking Space-Time Networks with Improved Memory Coverage for Efficient Video Object SegmentationHo Kei Cheng, Yu-Wing Tai, Chi-Keung TangNeurIPS 2021 · 403 citations
- Prototypical Cross-Attention Networks for Multiple Object Tracking and SegmentationLei Ke, Xia Li, Martin Danelljan, Yu-Wing Tai et al.NeurIPS 2021 · 92 citations
- LVOS: A Benchmark for Long-term Video Object SegmentationLingyi Hong, Wenchao Chen, Zhongying Liu, Wei Zhang et al.ICCV 2023 · 89 citations
- Recurrent Dynamic Embedding for Video Object SegmentationMingxing Li, Li Hu, Zhiwei Xiong, Bang Zhang et al.CVPR 2022 · 80 citations
- Reliable Propagation-Correction Modulation for Video Object SegmentationXiaohao Xu, Jinglu Wang, Xiao Li, Yan LuAAAI 2022 · 74 citations
Builds on3
- Video Object Segmentation Using Space-Time Memory NetworksSeoung Wug Oh, Joon-Young Lee, Ning Xu, Seon Joo KimICCV 2019 · 845 citations
- Asymmetric Non-Local Neural Networks for Semantic SegmentationZhen Zhu, Mengdu Xu, Song Bai, Tengteng Huang et al.ICCV 2019 · 694 citations
- State-Aware Tracker for Real-Time Video Object SegmentationXi Chen, Zuoxin Li, Ye Yuan, Gang Yu et al.CVPR 2020
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