DocumentCode :
2263393
Title :
Accurate minimax design of variable fractional-delay filters using linearized octagonal constraints
Author :
Tian-Bo Deng
Author_Institution :
Dept. of Inf. Sci., Toho Univ., Funabashi, Japan
fYear :
2011
fDate :
Aug. 29 2011-Sept. 2 2011
Firstpage :
1534
Lastpage :
1538
Abstract :
This paper proposes a linear programming (LP)-based minimax design of even-order finite-impulse-response (FIR) variable fractional-delay (VFD) digital filters. The original minimax design is a non-linear optimization problem. To convert this non-linear problem into a linear one, we apply the rotation theorem to linearize the non-linear constraints as linear ones through constraining the complex-valued errors of variable frequency response (VFR) inside an octagon in the complex plane such that the resulting constraints are linear functions of the VFD filter coefficients. Hence, the minimax design can be done by using an LP technique. An example is given to illustrate that an even-order VFD filter can be designed more accurately than using the decoupling LP approach that solves a pair of LP sub-problems separately.
Keywords :
FIR filters; constraint theory; delay filters; frequency response; linear programming; minimax techniques; nonlinear programming; LP-based minimax design; VFD filter coefficients; complex valued error; finite impulse response; linear programming; linearized octagonal constraint; nonlinear optimization problem; rotation theorem; variable fractional delay digital filter; variable frequency response; Abstracts; Programming;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Signal Processing Conference, 2011 19th European
Conference_Location :
Barcelona
ISSN :
2076-1465
Type :
conf
Filename :
7073841
Link To Document :
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