2020
DOI: 10.48550/arxiv.2002.11477
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Learning a Directional Soft Lane Affordance Model for Road Scenes Using Self-Supervision

Abstract: Humans navigate complex environments in an organized yet flexible manner, adapting to the context and implicit social rules. Understanding these naturally learned patterns of behavior is essential for applications such as autonomous vehicles. However, algorithmically defining these implicit rules of human behavior remains difficult. This work proposes a novel self-supervised method for training a probabilistic network model to estimate the regions humans are most likely to drive in as well as a multimodal repr… Show more

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