设计无乘法器的高效递归抽取器和插值器的系统算法

J. Yli-Kaakinen, T. Saramaki
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引用次数: 9

摘要

Renfors和Saramaki已经证明,如果不需要相位线性,那么基于所谓递归n带滤波器的单级和多级抽取器和插值器在现有的抽取器和插值器中提供了最低的计算复杂性。本文描述了为单级和多级实现设计这些抽取器和插值器的有效算法,从而使所得到的滤波器具有短系数字长而无乘法器。对于单级滤波器,系数优化分两步进行。首先,利用非线性优化算法确定包含可行空间的无限精度系数的参数空间,使滤波器满足给定条件;第二步涉及在该空间中查找过滤器参数,使结果过滤器符合给定的标准,并使用最简单的系数表示形式。对于多级抽取器和插值器,这两个步骤通过适当地共享其衰减责任来独立执行每个滤波器级。这大大减少了整体优化时间。为了说明所提出的综合方案的优点,还包括一个例子。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A systematic algorithm for designing multiplierless computationally efficient recursive decimators and interpolators
It has been shown by Renfors and Saramaki that if the phase linearity is not required, then the single-stage and multistage decimators and interpolators based on the use of the so-called recursive Nth-band filters provide the lowest computational complexities among the existing decimators and interpolators. This paper describes an efficient algorithm for designing these decimators and interpolators for both the single-stage and multistage implementations in such a way that the resulting filters become multiplierless with short coefficient wordlength. For single-stage filters, the coefficient optimization is performed in two steps. First, a nonlinear optimization algorithm is used for determining a parameter space of the infinite-precision coefficients including the feasible space, where the filter meets the given criteria. The second step involves finding the filter parameters in this space so that the resulting filter meets the given criteria with the simplest coefficient representation forms. For multistage decimators and interpolators, these two steps are performed independently for each filter stage by properly sharing their attenuation responsibilities. This considerably reduces the overall optimization time. An example is included in order to illustrate the benefits of the proposed synthesis scheme.
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