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Closed-form self-localization of asynchronous microphone arrays

机译:异步麦克风阵列的闭式自定位

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摘要

The utilization of distributed microphone arrays in many speech processing applications such as beamforming and speaker localization rely on the precise knowledge of microphone locations. Several self-localization approaches have been presented in the literature but still a simple, accurate, and robust method for asynchronous devices is lacking. This work presents an analytical solution for estimating the positions and rotations of asynchronous loudspeaker equipped microphone arrays or devices. The method is based on emitting and receiving calibration signals from each device, and extracting the time of arrival (TOA) values. Utilizing the knowledge of array geometry in the TOA estimation is proposed to improve accuracy of translation. Results with measurements using four devices on a table surface demonstrates a mean translation error of 11 mm with standard deviation of 6 mm and mean z-axis rotation error of 0.11 (rad) with a standard deviation of 0.14 (rad) in contrast to computer vision annotations with 200 rotations and translation estimates.
机译:在许多语音处理应用程序中,例如波束形成和扬声器定位,分布式麦克风阵列的利用都依赖于麦克风位置的精确知识。文献中已经提出了几种自定位方法,但是仍然缺少用于异步设备的简单,准确和健壮的方法。这项工作提出了一种用于估计配备异步扬声器的麦克风阵列或设备的位置和旋转的分析解决方案。该方法基于从每个设备发射和接收校准信号,并提取到达时间(TOA)值。提出在TOA估计中利用阵列几何的知识来提高平移的准确性。与计算机视觉相比,在桌面上使用四个设备进行测量的结果表明,平均平移误差为11 mm,标准偏差为6 mm,z轴平均旋转误差为0.11(rad),标准偏差为0.14(rad)。具有200个旋转和平移估算值的注释。

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