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Listening for people: Exploiting the spectral structure of speech to robustly perceive the presence of people

机译:倾听人们的声音:利用语音的频谱结构来稳健地感知人们的存在

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As the desire to see robots ubiquitous in society grows, so does the need for providing the robots with the means of building awareness of any humans with which it may be sharing the environment. This paper presents a real-world suitable system which enables robots to robustly perceive the presence of people acoustically. The proposed binaural system first identifies voiced signal by means of a novel approach to Voice Activity Detection that exploits the spectral signature and characteristics of speech without reliance on a priori knowledge. Bearing estimates for each speaker are then made using a multi-track particle filter with a belief update function comprised of a Cross-correlation bearing estimate and an estimate of the speaker's fundamental frequency. Results, from an evaluation of each of the major system components and a system evaluation in which the robot successfully built human-centric situational awareness of the three humans with which it shared an office lunch-room containing typical background noises, are presented and discussed.
机译:随着人们越来越渴望看到机器人在社会上无处不在,提供给机器人以增强对任何可能与人类共享环境的人类的意识的手段的需求也在增加。本文提出了一个现实世界中合适的系统,该系统使机器人能够以声学方式牢固地感知人的存在。所提出的双耳系统首先通过一种新颖的语音活动检测方法来识别语音信号,该方法利用了语音的频谱特征和特征,而无需依赖先验知识。然后,使用具有置信度更新功能的多轨粒子滤波器对每个说话者的方位进行估计,该信念更新功能包括互相关方位估计和说话者基本频率的估计。通过对每个主要系统组件的评估以及对机器人成功建立了以三个人为中心的情境意识的系统评估的结果进行了介绍和讨论,该机器人与三个人共享一个包含典型背景噪音的办公室午餐室。

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