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Towards Navigation by Reasoning over Spatial Configurations
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We deal with the navigation problem where the agent follows natural language instructions while observing the environment. Focusing on language understanding, we show the importance of spatial semantics in grounding navigation instructions into visual perceptions. We propose a neural agent that uses the elements of spatial configurations and investigate their influence on the navigation agent's reasoning ability. Moreover, we model the sequential execution order and align visual objects with spatial configurations in the instruction. Our neural agent improves strong baselines on the seen environments and shows competitive performance on the unseen environments. Additionally, the experimental results demonstrate that explicit modeling of spatial semantic elements in the instructions can improve the grounding and spatial reasoning of the model.
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Cited by 1 Pith paper
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NAVCON: A Cognitively Inspired and Linguistically Grounded Corpus for Vision and Language Navigation
A new corpus adds 236,316 navigation concept annotations and 2.7 million aligned video frames to the R2R and RxR vision-language navigation datasets.
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