日本フィジカルAI新聞

世界のフィジカルAIを、日本語で。

週刊ニュースレター購読
arXiv:2412.04888

VTD: Visual and Tactile Database for Driver State and Behavior Perception

VTD: Visual and Tactile Database for Driver State and Behavior Perception

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著者: Jie Wang, Mobing Cai, Zhongpan Zhu, Hongjun Ding, Jiwei Yi, Aimin Du

分類: cs.RO, cs.AI

原文アブストラクト

In the domain of autonomous vehicles, the human-vehicle co-pilot system has garnered significant research attention. To address the subjective uncertainties in driver state and interaction behaviors, which are pivotal to the safety of Human-in-the-loop co-driving systems, we introduce a novel visual-tactile perception method. Utilizing a driving simulation platform, a comprehensive dataset has been developed that encompasses multi-modal data under fatigue and distraction conditions. The experimental setup integrates driving simulation with signal acquisition, yielding 600 minutes of fatigue detection data from 15 subjects and 102 takeover experiments with 17 drivers. The dataset, synchronized across modalities, serves as a robust resource for advancing cross-modal driver behavior perception algorithms.