Title :
Fault Tolerance in Transform-Domain Adaptive Filters Operating With Real-Valued Signals
Author :
Radhakrishnan, Chandrasekhar ; Jenkins, William Kenneth
Author_Institution :
Dept. of Electr. Eng., Pennsylvania State Univ., University Park, PA, USA
Abstract :
Fault-tolerant adaptive filters (FTAFs) rely on inherent learning capabilities of the adaptive process to compensate for transient (soft) or permanent (hard) errors in the hardware implementation. In this paper, the use of the Walsh-Hadamard transform is first analyzed as a computationally efficient way of achieving adaptive fault tolerance, where a zero padding strategy is used to compensate for faulty filter coefficients. It is then shown that a fast-Fourier-transform (FFT)-based transform-domain FTAF operating on real-valued signals can provide a similar degree of fault tolerance without introducing redundancy in the form of zero padding. The complex arithmetic provides inherent fault-tolerant capabilities. This is achieved by using only the real part of the error to drive the coefficient updates. In the case of an N-tap filter, the FFT-based FTAF can protect up to N-2 filter coefficients.
Keywords :
CMOS integrated circuits; Hadamard transforms; Walsh functions; adaptive filters; fast Fourier transforms; fault tolerance; CMOS technology scaling; FFT; N-2 filter coefficients; N-tap filter; Walsh-Hadamard transform; fast-Fourier-transform based transform-domain operation; fault tolerance; faulty filter coefficients; real-valued signals; transform-domain adaptive filters; zero padding strategy; Adaptive systems; CMOS technology scaling; fault tolerance; transform-domain adaptive filters (TDAFs);
Journal_Title :
Circuits and Systems I: Regular Papers, IEEE Transactions on
DOI :
10.1109/TCSI.2009.2019402