cs.AI updates on arXiv.org 10月31日 12:01
认知偏差影响下的注意力感知逆规划
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本文提出了一种基于注意力感知的逆规划方法,旨在从人的行为中推断出认知偏差,并应用于实际驾驶场景中,展示其在估计认知偏差方面的可扩展性。

arXiv:2510.25951v1 Announce Type: new Abstract: People's goal-directed behaviors are influenced by their cognitive biases, and autonomous systems that interact with people should be aware of this. For example, people's attention to objects in their environment will be biased in a way that systematically affects how they perform everyday tasks such as driving to work. Here, building on recent work in computational cognitive science, we formally articulate the attention-aware inverse planning problem, in which the goal is to estimate a person's attentional biases from their actions. We demonstrate how attention-aware inverse planning systematically differs from standard inverse reinforcement learning and how cognitive biases can be inferred from behavior. Finally, we present an approach to attention-aware inverse planning that combines deep reinforcement learning with computational cognitive modeling. We use this approach to infer the attentional strategies of RL agents in real-life driving scenarios selected from the Waymo Open Dataset, demonstrating the scalability of estimating cognitive biases with attention-aware inverse planning.

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认知偏差 注意力感知 逆规划 驾驶场景 认知科学
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