Decoupling Minimax Design of Low-Complexity Variable Fractional-Delay FIR Digital Filters

被引:44
|
作者
Deng, Tian-Bo [1 ]
机构
[1] Toho Univ, Fac Sci, Dept Informat Sci, Chiba 2748510, Japan
关键词
Decoupling minimax design; even-order VFD filter; finite-impulse-response (FIR) VFD filter; linear programming (LP); odd-order VFD filter; variable digital filter; variable fractional-delay (VFD); variable frequency response (VFR); LEAST-SQUARES METHOD; VECTOR-ARRAY DECOMPOSITION; CLOSED-FORM DESIGN; SVD-BASED DESIGN; LINEAR-PHASE; PARALLEL IMPLEMENTATION; GUARANTEED STABILITY; SAMPLE DELAY; MAGNITUDE; 1-D;
D O I
10.1109/TCSI.2011.2123510
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
This paper presents a simple linear programming (LP) technique for designing high-accuracy low-complexity finite-impulse-response (FIR) variable fractional-delay (VFD) digital filters in the minimax error sense. The objective of the minimax design is to minimize the maximum absolute error of the variable frequency response (VFR) of an FIR VFD filter, which is a nonlinear problem and difficult to solve. This paper shows that the minimax design can be approximately decomposed into a pair of separate LP subproblems by decoupling the minimization of the real-part VFR error from that of the imaginary-part error. As a result, the original nonlinear minimax design problem can be easily solved by solving the two LP subproblems separately. To reduce the VFD filter complexity, we also propose a one-by-one increase scheme for optimizing the subfilter orders in the Farrow structure such that a given design specification (maximum absolute error of VFR) can be exactly satisfied. Both even-order and odd-order design examples are given to illustrate that the decoupling minimax method is not only simple, but also can achieve excellent high-accuracy low-complexity FIR VFD filters.
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页码:2398 / 2408
页数:11
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