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Online Localization of Multiple Moving Speakers in Reverberant Environments

机译:在混响环境中的多个移动扬声器在线定位

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This paper addresses the problem of online multiple moving speakers localization in reverberant environments. The direct-path relative transfer function (DP-RTF), as defined by the ratio between the first taps of the convolutive transfer function (CTF) of two microphones, encodes the inter-channel direct-path information and is thus used as a localization feature being robust against reverberation. The CTF estimation is based on the cross-relation method. In this work, the recursive least-square method is proposed to solve the cross-relation problem, due to its relatively low computational cost and its good convergence rate. The DP-RTF feature estimated at each time-frequency bin is assumed to correspond to a single speaker. A complex Gaussian mixture model is used to assign each observed feature to one among several speakers. The recursive expectation-maximization algorithm is adopted to update online the model parameters. The method is evaluated with a new dataset containing multiple moving speakers, where the ground-truth speaker trajectories are recorded with a motion capture system.
机译:本文解决了混响环境中的在线多动扬声器本地化问题。由两个麦克风的卷绕传递函数(CTF)的第一抽头之间的比率定义的直接路径相对传递函数(DP-RTF)对通道间直接路径信息进行编码,因此用作本地化特征是对混响的强大。 CTF估计基于交叉关系方法。在这项工作中,提出了递归最小二乘法来解决跨关系问题,因为其相对较低的计算成本及其良好的收敛速度。假设在每个时间频率仓估计的DP-RTF特征对应于单个扬声器。复杂的高斯混合模型用于将每个观察到的特征分配给几个扬声器中的一个。采用递归期望 - 最大化算法在在线更新模型参数。该方法用包含多个移动扬声器的新数据集进行评估,其中地面真理扬声器轨迹被记录为运动捕获系统。

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