Bayesian Relational Memory for Semantic Visual Navigation
Yi Wu, Yuxin Wu, Aviv Tamar, Stuart Russell, Georgia Gkioxari, Yuandong Tian
摘要
We introduce a new memory architecture, Bayesian Relational Memory (BRM), to improve the generalization ability for semantic visual navigation agents in unseen environments, where an agent is given a semantic target to navigate towards. BRM takes the form of a probabilistic relation graph over semantic entities (e.g., room types), which allows (1) capturing the layout prior from training environments, i.e., prior knowledge, (2) estimating posterior layout at test time, i.e., memory update, and (3) efficient planning for navigation, altogether. We develop a BRM agent consisting of a BRM module for producing sub-goals and a goal-conditioned locomotion module for control. When testing in unseen environments, the BRM agent outperforms baselines that do not explicitly utilize the probabilistic relational memory structure.
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引用它的顶会 Paper27
- MultiON: Benchmarking Semantic Map Memory using Multi-Object NavigationSaim Wani, Shivansh Patel, Unnat Jain, Angel X. Chang 等NeurIPS 2020 · 被引用 156 次
- Semantic Visual Navigation by Watching YouTube VideosMatthew Chang, Arjun Gupta, Saurabh GuptaNeurIPS 2020 · 被引用 108 次
- Hierarchical Object-to-Zone Graph for Object NavigationSixian Zhang, Xinhang Song, Yubing Bai, Weijie Li 等ICCV 2021 · 被引用 98 次
- No RL, No Simulation: Learning to Navigate without NavigatingMeera Hahn, Devendra Singh Chaplot, Shubham Tulsiani, Mustafa Mukadam 等NeurIPS 2021 · 被引用 98 次
- Visual Graph Memory with Unsupervised Representation for Visual NavigationObin Kwon, Nuri Kim, Yunho Choi, Hwiyeon Yoo 等ICCV 2021 · 被引用 86 次
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