车载视觉语音活动检测的嵌入式系统

V. Libal, J. Connell, G. Potamianos, E. Marcheret
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引用次数: 10

摘要

本文提出了一种利用从驾驶员口腔区域提取的视觉信息在汽车域自动检测驾驶员语音的系统。这项工作的动机是希望在典型的嘈杂汽车环境中,在新设计的语音界面中消除语音识别引擎的手动一键说话激活,旨在减少驾驶员的认知负荷并增加交互的自然性。该系统使用安装在后视镜上的摄像头监控驾驶员,检测面部边界和面部特征,最后利用嘴唇运动线索识别视觉语言活动。特别是,所设计的算法具有非常低的计算成本,可以在当前可用的廉价嵌入式平台上实时实现,如本文所述。在移动车辆中收集的小型多扬声器数据库上也进行了实验,结果表明该方法具有良好的准确性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An Embedded System for In-Vehicle Visual Speech Activity Detection
We present a system for automatically detecting driver's speech in the automobile domain using visual-only information extracted from the driver's mouth region. The work is motivated by the desire to eliminate manual push-to-talk activation of the speech recognition engine in newly designed voice interfaces in the typically noisy car environment, aiming at reducing driver cognitive load and increasing naturalness of the interaction. The proposed system uses a camera mounted on the rearview mirror to monitor the driver, detect face boundaries and facial features, and finally employ lip motion clues to recognize visual speech activity. In particular, the designed algorithm has very low computational cost, which allows real-time implementation on currently available inexpensive embedded platforms, as described in the paper. Experiments are also reported on a small multi-speaker database collected in moving automobiles, that demonstrate promising accuracy.
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