Confidence-aware Pseudo-label Learning for Weakly Supervised Visual Grounding
Yang Liu, Jiahua Zhang, Qingchao Chen, Yuxin Peng
摘要
Visual grounding aims at localizing the target object in image which is most related to the given free-form natural language query. As labeling the position of target object is labor-intensive, the weakly supervised methods, where only image-sentence annotations are required during model training have recently received increasing attention. Most of the existing weakly-supervised methods first generate region proposals via pre-trained object detectors and then employ either cross-modal similarity score or reconstruction loss as the criteria to select proposal from them. However, due to the cross-modal heterogeneous gap, these method often suffer from high confidence spurious association and model prone to error propagation. In this paper, we propose Confidence-aware Pseudo-label Learning (CPL) to overcome the above limitations. Specifically, we first adopt both the uni-modal and cross-modal pre-trained models and propose conditional prompt engineering to automatically generate multiple ‘descriptive, realistic and diverse’ pseudo language queries for each region proposal, and then establish reliable cross-modal association for model training based on the uni-modal similarity score (between pseudo and real text queries). Secondly, we propose a confidence-aware pseudo label verification module which reduces the amount of noise encountered in the training process and the risk of error propagation. Experiments on five widely used datasets validate the efficacy of our proposed components and demonstrate state-of-the-art performance. Code can be found at https://github.com/zjh31/CPL.git
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引用它的顶会 Paper5
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- Dual-Level Confidence based Implicit Self-Refinement for Medical Visual Question AnsweringMeihong Pan, Yefeng ZhengCVPR 2026
- Momentum Pseudo-Labeling for Weakly Supervised Phrase GroundingDongdong Kuang, Richong Zhang, Zhijie Nie, Junfan Chen 等AAAI 2025
它引用的顶会 Paper18
- Learning Transferable Visual Models From Natural Language SupervisionAlec Radford, Jong Wook Kim, Chris Hallacy, Aditya Ramesh 等ICML 2021 · 被引用 47,906 次
- BLIP: Bootstrapping Language-Image Pre-training for Unified Vision-Language Understanding and GenerationJunnan Li, Dongxu Li, Caiming Xiong, Steven C. H. HoiICML 2022 · 被引用 6,549 次
- Align before Fuse: Vision and Language Representation Learning with Momentum DistillationJunnan Li, Ramprasaath R. Selvaraju, Akhilesh Gotmare, Shafiq R. Joty 等NeurIPS 2021 · 被引用 2,985 次
- TransVG: End-to-End Visual Grounding with TransformersJiajun Deng, Zhengyuan Yang, Tianlang Chen, Wengang Zhou 等ICCV 2021 · 被引用 468 次
- A Fast and Accurate One-Stage Approach to Visual GroundingZhengyuan Yang, Boqing Gong, Liwei Wang, Wenbing Huang 等ICCV 2019 · 被引用 441 次
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