Cross-modal Map Learning for Vision and Language Navigation
Georgios Georgakis, Karl Schmeckpeper, Karan Wanchoo, Soham Dan, Eleni Miltsakaki, Dan Roth, Kostas Daniilidis
摘要
We consider the problem of Vision-and-Language Navigation (VLN). The majority of current methods for VLN are trained end-to-end using either unstructured memory such as LSTM, or using cross-modal attention over the egocentric observations of the agent. In contrast to other works, our key insight is that the association between language and vision is stronger when it occurs in explicit spatial representations. In this work, we propose a cross-modal map learning model for vision-and-language navigation that first learns to predict the top-down semantics on an egocentric map for both observed and unobserved regions, and then predicts a path towards the goal as a set of way-points. In both cases, the prediction is informed by the language through cross-modal attention mechanisms. We experimentally test the basic hypothesis that language-driven navigation can be solved given a map, and then show competitive results on the full VLN-CE benchmark.
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引用它的顶会 Paper48
- Weakly-Supervised Multi-Granularity Map Learning for Vision-and-Language NavigationPeihao Chen, Dongyu Ji, Kunyang Lin, Runhao Zeng 等NeurIPS 2022 · 被引用 143 次
- GridMM: Grid Memory Map for Vision-and-Language NavigationZihan Wang, Xiangyang Li, Jiahao Yang, Yeqi Liu 等ICCV 2023 · 被引用 136 次
- Bird's-Eye-View Scene Graph for Vision-Language NavigationRui Liu, Xiaohan Wang, Wenguan Wang, Yi YangICCV 2023 · 被引用 100 次
- Embodied Navigation Foundation ModelJiazhao Zhang, Anqi Li, Yunpeng Qi, Minghan Li 等ICLR 2026 · 被引用 93 次
- Ground Slow, Move Fast: A Dual-System Foundation Model for Generalizable Vision-Language NavigationMeng Wei, Chenyang Wan, Jiaqi Peng, Xiqian Yu 等ICLR 2026 · 被引用 77 次
它引用的顶会 Paper20
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