用于合理采样率转换的多相滤波矩阵

C. Hsiao
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引用次数: 60

摘要

多相滤波器阵列已被用于有效实现具有整数采样率转换的滤波器。[1]高采样率侧的滤波器被分解成多相滤波器,多相滤波器可以移动到低采样率侧而不改变其功能。对于FIR滤波器,计算复杂度被一个等于采样率比的因子所降低。一个由1-to-L插值器和M-to-1抽取器实现的有理(L/M)采样率转换系统包含三个采样率F、LF和(L/M)F。通过使用多相滤波器阵列,可以在输入端或以较低采样率的输出端实现以低频采样率工作的滤波器。多相滤波器矩阵结构将以F/M的采样率工作,这在上面的模型中没有显示出来,并且低于这三个速率中的任何一个。对于FIR滤波器,在保持系统输入输出关系的情况下,与直接实现积分滤波器相比,计算复杂度降低了LM,与多相滤波器阵列相比,计算复杂度降低了M(或L)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Polyphase filter matrix for rational sampling rate conversions
The polyphase filter array has been used for efficient implementations of filters with integer sampling rate conversions. [1] The filter in the high sampling rate side is decomposed into its polyphase filters which can be moved to the lower sampling rate side without changing their functions. For FIR filters the computational complexity is reduced by a factor equal to the sampling rate ratio. A rational (L/M) sampling rate conversion system realized with a 1-to-L interpolator followed by an M-to-1 decimator has three sampling rates F, LF and (L/M)F involved. By using the polyphase filter array a filter operating at the sampling rate of LF can be implemented in either the input side or the output side with lower sampling rates. The polyphase filter matrix structure will operate at the sampling rate of F/M, which does not show in the above model and is lower than any one of those three rates. For FIR filters the computational complexity is reduced by a factor of LM compared to the direct realization of the integral filter or by a factor of M (or L) compared to the polyphase filter array realization while the system input-output relation is maintained.
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