A design of linear phase band-pass FIR digital differentiators with flat passband and Lp norm-based stopband characteristics
Kiyoshiro Hamamoto, Takashi Yoshida, Naoyuki Aikawa
Abstract
Kiyoshiro Hamamoto, Takashi Yoshida, Naoyuki Aikawa
Abstract
This paper describes a design of linear phase band-pass FIR digital differentiators with flat passband and Lp(1 ≤ p ≤ ∞) norm-based stopband characteristics. The transfer function consists of a passband function and a stopband function. The passband function guarantees the flat differential characteristics around an arbitrary center frequency. In addition, the maximally flat differentiators provide highly accurate differentiation around the desired frequency (the center frequency). The stopband function provides the Lpnorm-based stopband while correcting the stopband region of the passband function. The coefficients of the stopband function are obtained through the quasi-minimization based on IRLS (Iterative Reweighted Least Squares) algorithm. The proposed design achieves the flexible stopband under the trade-off between the transition bandwidth and the size of side-lope ripple.
OpenAlex reports 1 citations for this work. Citation counts describe recorded attention and do not establish research quality.
A contribution statement is not available in the OpenAlex record.
Method details are not available in the OpenAlex metadata.
Findings are not separately available in the OpenAlex metadata.
Limitations are not available in the OpenAlex metadata.
Application details are not available in the OpenAlex metadata.
This paper describes a design of linear phase band-pass FIR digital differentiators with flat passband and Lp(1 ≤ p ≤ ∞) norm-based stopband characteristics. The transfer function consists of a passband function and a stopband function. The passband function guarantees the flat differential characteristics around an arbitrary center frequency. In addition, the maximally flat differentiators provide highly accurate differentiation around the desired frequency (the center frequency). The stopband function provides the Lpnorm-based stopband while correcting the stopband region of the passband function. The coefficients of the stopband function are obtained through the quasi-minimization based on IRLS (Iterative Reweighted Least Squares) algorithm. The proposed design achieves the flexible stopband under the trade-off between the transition bandwidth and the size of side-lope ripple.
Key concepts: Stopband, Transition band, Passband, Linear phase, Chebyshev filter, Control theory (sociology), Mathematics, Elliptic filter