NavQ: Learning a Q-Model for Foresighted Vision-and-Language Navigation
Peiran Xu, Xicheng Gong, Yadong Mu
摘要
In this work we concentrate on the task of goal-oriented Vision-and-Language Navigation (VLN). Existing methods often make decisions based on historical information, overlooking the future implications and long-term outcomes of the actions. In contrast, we aim to develop a foresighted agent. Specifically, we draw upon Q-learning to train a Qmodel using large-scale unlabeled trajectory data, in order to learn the general knowledge regarding the layout and object relations within indoor scenes. This model can generate a Q-feature, analogous to the Q-value in traditional Q-network, for each candidate action, which describes the potential future information that may be observed after taking the specific action. Subsequently, a cross-modal future encoder integrates the task-agnostic Q-feature with navigation instructions to produce a set of action scores reflecting future prospects. These scores, when combined with the original scores based on history, facilitate an A*-style searching strategy to effectively explore the regions that are more likely to lead to the destination. Extensive experiments conducted on widely used goal-oriented VLN datasets validate the effectiveness of the proposed method. Our codes are available at https://github.com/woyut/NavQ ICCV25.
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引用它的顶会 Paper2
- All-day Multi-scenes Lifelong Vision-and-Language Navigation with Tucker AdaptationXudong Wang, Gan Li, Zhiyu Liu, Yao Wang 等ICLR 2026 · 被引用 4 次
- ProFocus: Proactive Perception and Focused Reasoning in Vision-and-Language NavigationWei Xue, Mingcheng Li, Xuecheng Wu, Jingqun Tang 等CVPR 2026 · 被引用 4 次
它引用的顶会 Paper81
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- NavGPT: Explicit Reasoning in Vision-and-Language Navigation with Large Language ModelsGengze Zhou, Yicong Hong, Qi WuAAAI 2024 · 被引用 361 次
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- Airbert: In-domain Pretraining for Vision-and-Language NavigationPierre-Louis Guhur, Makarand Tapaswi, Shizhe Chen, Ivan Laptev 等ICCV 2021 · 被引用 185 次
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