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00958344(自适应IIR)
IEEE TRANSACTIONS ON CIRCUITS AND SYSTEMS—II: ANALOG AND DIGITAL SIGNAL PROCESSING, VOL. 48, NO. 7, JULY 2001 733
Steady-State Analysis of a Plain Gradient Algorithm
for a Second-Order Adaptive IIR Notch Filter
With Constrained Poles and Zeros
Yegui Xiao, Yoshihiro Takeshita, and Katsunori Shida
Abstract—Gradient-type algorithms for adaptive infinite-impulse
response (IIR) notch filters are very attractive in terms of performance
and computation cost as well. However, it is generally quite difficult to
assess their performances analytically. There are several trials to analyze
adaptive algorithms, such as the sign and the plain gradient algorithms
for some types of adaptive IIR notch filters, but the analysis techniques
used there cannot be directly applied to different types of adaptive IIR
notch filters.
This brief presents closed form expressions for steady-state estimation
bias and mean square error (MSE) of a well known plain gradient
(LMS-like) second-order adaptive IIR notch filter with constrained poles
and zeros. First, theoretical expressions for output signals of the notch
filter and its corresponding gradient filter at their steady states are
developed based on the Taylor series expansions of transfer functions
of these two filters in the vicinity of the sinusoidal signal frequency.
Difference equations for convergences in the mean and mean square
are then established by using of these output signals, from which the
steady-state bias and MSE of the algorithm are derived. Stability bound
of the algorithm is also investigated based on the difference equations.
Extensive simulations are provided to support the analytical findings.
Index Terms—Adaptive IIR notch filtering, constrained notch filter, es-
timation bias, estimation mean square error, gradient algorithm, perfor-
mance analysis.
I. INTRODUCTION
Adaptive frequency estimation of noisy sinusoidal signal is required
in a vast number of signal processing applications such as communica-
tions, radar, so
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