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Adaptive Filtered-x Algorithms for Room Equalization Based on Block-Based Combination Schemes

机译:基于块组合方案的自适应均衡x机房均衡算法

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Room equalization has become essential for sound reproduction systems to provide the listener with the desired acoustical sensation. Recently, adaptive filters have been proposed as an effective tool in the core of these systems. In this context, this paper introduces different novel schemes based on the combination of adaptive filters idea: a versatile and flexible approach that permits obtaining adaptive schemes combining the capabilities of several independent adaptive filters. In this way, we have investigated the advantages of a scheme called combination of block-based adaptive filters which allows a blockwise combination splitting the adaptive filters into nonoverlapping blocks. This idea was previously applied to the plant identification problem, but has to be properly modified to obtain a suitable behavior in the equalization application. Moreover, we propose a scheme with the aim of further improving the equalization performance using the a priori knowledge of the energy distribution of the optimal inverse filter, where the block filters are chosen to fit with the coefficients energy distribution. Furthermore, the biased block-based filter is also introduced as a particular case of the combination scheme, especially suited for low signal-to-noise ratios (SNRs) or sparse scenarios. Although the combined schemes can be employed with any kind of adaptive filter, we employ the filtered-x improved proportionate normalized least mean square algorithm as basis of the proposed algorithms, allowing to introduce a novel combination scheme based on partitioned block schemes where different blocks of the adaptive filter use different parameter settings. Several experiments are included to evaluate the proposed algorithms in terms of convergence speed and steady-state behavior for different degrees of sparseness and SNRs.
机译:房间均衡已成为声音再现系统为听众提供所需的听觉感觉所必需的。近来,已提出自适应滤波器作为这些系统核心中的有效工具。在这种情况下,本文基于自适应滤波器思想的组合介绍了不同的新颖方案:一种通用灵活的方法,允许获得结合了几个独立自适应滤波器功能的自适应方案。这样,我们研究了一种称为基于块的自适应滤波器组合的方案的优点,该方案允许按块组合将自适应滤波器分为非重叠的块。这个想法以前曾应用于工厂识别问题,但必须进行适当修改才能在均衡应用中获得合适的性能。此外,我们提出了一种方案,其目的是使用最优逆滤波器的能量分布的先验知识进一步提高均衡性能,其中选择块滤波器以适合系数能量分布。此外,作为组合方案的特殊情况,还引入了基于偏置块的滤波器,特别适合于低信噪比(SNR)或稀疏场景。尽管可以将组合方案与任何类型的自适应滤波器一起使用,但我们还是采用了x滤波改进的比例归一化最小均方算法作为所提出算法的基础,从而可以引入基于分区块方案的新颖组合方案,其中自适应滤波器使用不同的参数设置。在收敛速度和稳态行为方面,针对不同程度的稀疏性和SNR,进行了一些实验来评估所提出的算法。

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