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OPTIMIZATION OF FREQUENCY-RESPONSE MASKING BASED FIR FILTERS

机译:基于频率响应屏蔽的FIR滤波器的优化

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A very efficient technique to drastically reduce the number of multipliers and adders in implementing linear-phase finite-impulse response (FIR) digital filters in applications demanding a narrow transition band is to use the frequency-response masking (FRM) approach originally introduced by Lim. The arithmetic complexity can be even further reduced using a common filter part for constructing the masking filters originally proposed by Lim and Lian. A drawback in the above-mentioned original FRM synthesis techniques is that the subfilters in the overall implementations are separately designed. In order to further reduce the arithmetic complexity in these two FRM approaches, the following two-step optimization technique is proposed for simultaneously optimizing the subfilters. At the first step, a good suboptimal solution is found by using a simple iterative algorithm. At the second step, this solution is then used as a start-up solution for further optimization being carried out by using an efficient unconstrained nonlinear optimization algorithm. An example taken from the literature illustrates that both the number of multipliers and the number of adders for the resulting optimized filter are less than 80% compared with those of the FRM filter obtained using the original FRM design schemes in the case where the masking filters are separately implemented. If a common filter part is used for realizing the masking filters, then an additional reduction of more than 10% is achieved compared with the optimized design with separately implemented masking filters.
机译:在要求窄过渡带的应用中,大幅减少实现线性相位有限脉冲响应(FIR)数字滤波器的乘法器和加法器的数量的一种非常有效的技术是使用Lim最初引入的频率响应屏蔽(FRM)方法。使用通用的滤波器部分来构造由Lim和Lian最初提出的掩蔽滤波器,可以进一步降低算术复杂度。上述原始的FRM合成技术的缺点在于,整体实现中的子滤波器是分开设计的。为了进一步降低这两种FRM方法的算术复杂度,提出了以下两步优化技术来同时优化子滤波器。第一步,通过使用简单的迭代算法找到一个好的次优解决方案。然后,在第二步中,将此解决方案用作启动解决方案,以通过使用高效的无约束非线性优化算法进行进一步优化。从文献中得出的一个例子说明,与使用原始FRM设计方案获得的FRM滤波器相比,在采用掩蔽滤波器的情况下,所得优化滤波器的乘数和加法器数量均小于80%。单独实施。如果使用通用滤波器部分来实现掩膜滤波器,则与采用单独实施的掩膜滤波器的优化设计相比,可实现10%以上的额外降低。

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