DocumentCode :
1559474
Title :
A technique for realizing linear phase IIR filters
Author :
Powell, Scott R. ; Chau, Paul M.
Author_Institution :
California Univ., San Diego, CA, USA
Volume :
39
Issue :
11
fYear :
1991
fDate :
11/1/1991 12:00:00 AM
Firstpage :
2425
Lastpage :
2435
Abstract :
A real-time IIR filter structure is presented that possesses exact phase linearity with 10~1000 times fewer general multiplies than conventional FIR filters of similar performance and better magnitude characteristics than equiripple or maximally flat group delay IIR filters. This structure is based on a technique using local time reversal and single pass sectioned convolution methods to realized a real-time recursive implementation of the noncausal transfer function H(z-1). The time reversed section technique used to realize exactly linear phase IIR filters is described. The effects of finite section length on the sectional convolution are analyzed. A simulation methodology is developed to address the special requirements of simulating a time reversed section filter. A design example is presented, with computer simulation to illustrate performance, in terms of overall magnitude response and phase linearity, as a function of finite section length. Nine example filter specifications are used to compare the performance and complexity of the time reversed section technique to those of a direct FIR implementation
Keywords :
digital filters; filtering and prediction theory; transfer functions; computer simulation; finite section length; linear phase IIR filters; local time reversal; magnitude response; noncausal transfer function; phase linearity; real-time recursive implementation; single pass sectioned convolution methods; Convolution; Delay; Ear; Finite impulse response filter; Finite wordlength effects; IIR filters; Limit-cycles; Linearity; Nonlinear filters; Transfer functions;
fLanguage :
English
Journal_Title :
Signal Processing, IEEE Transactions on
Publisher :
ieee
ISSN :
1053-587X
Type :
jour
DOI :
10.1109/78.97998
Filename :
97998
Link To Document :
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