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Driver Assistant: Persuading Drivers to Adjust Secondary Tasks Using Large Language Models
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本研究利用大型语言模型(LLM)为Level 3自动驾驶系统提供“人性化”的劝导,以降低驾驶员认知负荷,维持对道路状况的关注,并通过实证研究证实其有效性。

arXiv:2508.05238v1 Announce Type: cross Abstract: Level 3 automated driving systems allows drivers to engage in secondary tasks while diminishing their perception of risk. In the event of an emergency necessitating driver intervention, the system will alert the driver with a limited window for reaction and imposing a substantial cognitive burden. To address this challenge, this study employs a Large Language Model (LLM) to assist drivers in maintaining an appropriate attention on road conditions through a "humanized" persuasive advice. Our tool leverages the road conditions encountered by Level 3 systems as triggers, proactively steering driver behavior via both visual and auditory routes. Empirical study indicates that our tool is effective in sustaining driver attention with reduced cognitive load and coordinating secondary tasks with takeover behavior. Our work provides insights into the potential of using LLMs to support drivers during multi-task automated driving.

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Level 3 自动驾驶 大型语言模型 驾驶员注意力
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