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Speaker Tracking Based on Distributed Particle Filter in Distributed Microphone Networks

机译:分布式麦克风网络中基于分布式粒子滤波的说话人跟踪

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A speaker tracking method based on a distributed particle filter (DPF) for distributed microphone networks is proposed in this paper. First, the generalized cross-correlation (GCC) function is estimated at each node. To cope with the spurious effects due to the noise or reverberation, multiple delays related to the largest local peaks of the GCC constitute the local observation. Next, based on an optimal fusion rule, a modified DPF is presented, and a modified multiple-hypothesis model is also developed as its likelihood function by incorporating the information of the GCC. Finally, the modified DPF is used to track a moving speaker with a distributed microphone network. The proposed method requires only local communication among neighboring nodes, and is robust against nodes failure. Simulation and real-world experimental results demonstrate the validity of the proposed method.
机译:提出了一种基于分布式粒子滤波器(DPF)的分布式麦克风网络说话人跟踪方法。首先,在每个节点处估计广义互相关(GCC)函数。为了应对由于噪声或混响引起的杂散效应,与GCC的最大局部峰值相关的多次延迟构成了局部观测。接下来,基于最优融合规则,提出了一种改进的DPF,并且通过合并GCC的信息,还开发了一种改进的多重假设模型作为其似然函数。最后,修改后的DPF用于跟踪具有分布式麦克风网络的移动扬声器。所提出的方法仅需要相邻节点之间的本地通信,并且对于节点故障具有鲁棒性。仿真和实际实验结果证明了该方法的有效性。

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