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An automatic system for microphone self-localization using ambient sound

机译:使用环境声音进行麦克风自定位的自动系统

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In this paper, we develop a system for microphone self-localization based on ambient sound, without any assumptions on the 3D locations of the microphones and sound sources. We aim at developing a system capable of dealing with multiple moving sound sources. We will show that this is possible given that there are instances where there are only one dominating sound source. In the first step of the system we employ a feature detection and matching strategy. This produces TDOA data, possibly with missing data and with outliers. Then we use a robust and stratified approach for the parameter estimation. We use robust techniques to calculate initial estimates on the offsets parameters, followed by nonlinear optimization based on a rank criterion. Sequentially we use robust methods for calculating initial estimates of the sound source positions and microphone positions, followed by non-linear Maximum Likelihood estimation of all parameters. The methods are tested and verified using anechoic chamber sound recordings.
机译:在本文中,我们开发了一种基于环境声音的麦克风自定位系统,无需对麦克风和声源的3D位置进行任何假设。我们旨在开发一种能够处理多种移动声源的系统。我们将证明这是可行的,因为在某些情况下,只有一个主要的声源。在系统的第一步,我们采用特征检测和匹配策略。这将产生TDOA数据,可能带有丢失的数据和异常值。然后,我们使用稳健且分层的方法进行参数估计。我们使用鲁棒的技术来计算偏移参数的初始估计,然后基于秩标准进行非线性优化。依次地,我们使用可靠的方法来计算声源位置和麦克风位置的初始估计,然后是所有参数的非线性最大似然估计。使用消声室录音对方法进行了测试和验证。

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