Locate Then Segment: A Strong Pipeline for Referring Image Segmentation
Ya Jing, Tao Kong, Wei Wang, Liang Wang, Lei Li, Tieniu Tan
Abstract
Referring image segmentation aims to segment the objects referred by a natural language expression. Previous methods usually focus on designing an implicit and recurrent feature interaction mechanism to fuse the visuallinguistic features to directly generate the final segmentation mask without explicitly modeling the localization information of the referent instances. To tackle these problems, we view this task from another perspective by decoupling it into a "Locate-Then-Segment" (LTS) scheme. Given a language expression, people generally first perform attention to the corresponding target image regions, then generate a fine segmentation mask about the object based on its context. The LTS first extracts and fuses both visual and textual features to get a cross-modal representation, then applies a cross-model interaction on the visual-textual features to locate the referred object with position prior, and finally gen- erates the segmentation result with a light-weight segmentation network. Our LTS is simple but surprisingly effective. On three popular benchmark datasets, the LTS outperforms all the previous state-of-the-arts methods by a large margin (e.g., +3.2% on RefCOCO+ and +3.4% on RefCOCOg). In addition, our model is more interpretable with explicitly locating the object, which is also proved by visualization experiments. We believe this framework is promising to serve as a strong baseline for referring image segmentation. * This work was done when Ya Jing was an intern at ByteDance AI Lab.
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Builds on7
- Attention Augmented Convolutional NetworksIrwan Bello, Barret Zoph, Quoc Le, Ashish Vaswani et al.ICCV 2019 · 1,149 citations
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- Cascade Grouped Attention Network for Referring Expression SegmentationGen Luo, Yiyi Zhou, Rongrong Ji, Xiaoshuai Sun et al.ACM MM 2020 · 142 citations
- Multi-Task Collaborative Network for Joint Referring Expression Comprehension and SegmentationGen Luo, Yiyi Zhou, Xiaoshuai Sun, Liujuan Cao et al.CVPR 2020
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