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Adaptive Quantization for Multichannel Wiener Filter-Based Speech Enhancement in Wireless Acoustic Sensor Networks

机译:无线声传感器网络中基于多声道维纳滤波器的语音增强的自适应量化

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摘要

Speech enhancement in wireless acoustic sensor networks requires the exchange of audio signals. Since the wireless communication often dominates the nodes’ energy budget, techniques for data exchange reduction are crucial. Adaptive quantization aims to optimize the bit depth of each exchanged signal according to its contribution to the speech enhancement performance. This enables the network to scale its energy and communication bandwidth requirements according to the current operating environment. The impact metric was previously proposed to predict the effect of quantization in linear minimum mean squared error (MMSE) estimation. We provide new insights into greedy adaptive quantization based on this impact metric. We achieve this by expanding the mathematical framework to include a new metric based on the gradient of the MMSE as a function of the quantization noise power. Using these tools, we show how the MMSE gradient naturally leads to a greedy algorithm and how the impact metric is a generalization of the gradient metric and a previously proposed metric. Besides, we validate the impact metric for adaptive quantization both in a simulated and in a real wireless acoustic sensor network deployed in a home environment, showing the energy savings achievable through greedy adaptive quantization.
机译:无线声学传感器网络中的语音增强需要交换音频信号。由于无线通信经常主导节点的能量预算,因此用于数据交换减少的技术至关重要。自适应量化旨在根据其对语音增强性能的贡献来优化每个交换信号的比特深度。这使得网络能够根据当前操作环境扩展其能量和通信带宽要求。先前提出了影响度量以预测量化在线性最小平均平方误差(MMSE)估计的效果。基于这种影响指标,我们为贪婪自适应量化提供了新的洞察。我们通过扩展数学框架来实现这一点,以基于MMSE的梯度作为量化噪声功率的函数来包括新的度量。使用这些工具,我们展示了MMSE梯度自然地导致贪婪算法以及冲击度量如何是梯度度量的概括和先前提出的度量。此外,我们验证了在家庭环境中部署的实际无线声学传感器网络中的自适应量化的影响度量,显示通过贪婪自适应量化可实现的节能。

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