DocumentCode :
47925
Title :
Add-Equalize Structures for Linear-Phase Nyquist FIR Filter Interpolators and Decimators
Author :
Johansson, Hakan ; Eghbali, Amir
Author_Institution :
Dept. of Electr. Eng., Linkoping Univ., Linkoping, Sweden
Volume :
61
Issue :
6
fYear :
2014
fDate :
Jun-14
Firstpage :
1766
Lastpage :
1777
Abstract :
This paper introduces add-equalize structures for the implementation of linear-phase Nyquist (M th-band) finite-length impulse response (FIR) filter interpolators and decimators. The paper also introduces a systematic design technique for these structures based on iteratively reweighted ℓ1-norm minimization. In the proposed structures, the polyphase components share common parts which leads to a considerably lower implementation complexity as compared to conventional single-stage converter structures. The complexity is comparable to that of multi-stage Nyquist structures. A main advantage of the proposed structures is that they work equally well for all integer conversion factors, thus including prime numbers which cannot be handled by the regular multi-stage Nyquist converters. Moreover, the paper shows how to utilize the frequency-response masking approach to further reduce the complexity for sharp-transition specifications. It also shows how the proposed structures can be used to reduce the complexity for reconfigurable sampling rate converters. Several design examples are included to demonstrate the effectiveness of the proposed structures.
Keywords :
FIR filters; frequency response; interpolation; iterative methods; linear phase filters; minimisation; add-equalize structures; finite-length impulse response filter; frequency-response masking approach; integer conversion factors; iteratively reweighted ℓ1-norm minimization; linear-phase Nyquist FIR filter decimators; linear-phase Nyquist FIR filter interpolators; multistage Nyquist converter structures; prime numbers; reconfigurable sampling rate converters; sharp-transition specifications; single-stage converter structures; systematic design technique; Complexity theory; Finite impulse response filters; Interpolation; Minimization; Periodic structures; Systematics; Transfer functions; $ell _{1}$-norm minimization; FIR filters; Nyquist filters; fractional-delay filters; interpolation and decimation; linear-phase filters; low complexity;
fLanguage :
English
Journal_Title :
Circuits and Systems I: Regular Papers, IEEE Transactions on
Publisher :
ieee
ISSN :
1549-8328
Type :
jour
DOI :
10.1109/TCSI.2013.2295021
Filename :
6701398
Link To Document :
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