基于相关信号相关量化噪声模型的最小MSE滤波器组设计

A. Hjørungnes
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引用次数: 0

摘要

提出了在采用均匀量化器和理想熵编码压缩子带信号时,如何设计损耗源编码的最小均方误差(MSE)滤波器组的理论。利用依赖信号的相关模型,找出加性量化噪声在同一子带内和不同子带间的自相关和互相关。该理论还展示了如何找到原始时间序列与加性量化噪声之间的相互关系。仿真结果表明,所提出的滤波器组设计方法优于经典的独立于信号的高速率量化噪声模型所获得的最小MSE性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Minimum MSE Filter Banks Design Using Correlated Signal Dependent Quantization Noise Model
A theory is proposed for how to design minimum mean square error (MSE) filter banks for lossy source coding when uniform quantizers and ideal entropy coding are used to compress the subband signals. A signal-dependent correlation model is used to find the auto and cross correlation between the additive quantization noise within the same subband and across different subbands. This theory also shows how to find the cross correlation between the original time-series and the additive quantization noise. The simulation results show that the proposed way of designing the filter banks outperforms the minimum MSE performance results found by using the classical signal independent high-rate quantization noise model.
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