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Item type:Item, Transition between a flat magnitude and a sharp cut-off lowpass filter(1979-01-01) ;Thajchayapong, P.Lomtong, P.A Butterworth lowpass filter provides excellent flatness around ω = 0 but the cut-off rate is low. Recently improvements to the cut-off rate have been made by introducing one ripple near the band edge. This paper offers a generalized design technique such that any degree of trade-offs between flat magnitude around ω = 0 and sharp cut-off at the band edge can be obtained while keeping the ratio of the reflected power to the transmitted power at minimum. © 1979 Taylor and Francis Group, LLC. - Some of the metrics are blocked by yourconsent settings
Item type:Item, Filter coefficients of high-pass and band-elimination recursive digital filters with a maximally flat group delay(1979-10-01) ;Thajchayapong, P.Cheevasuvit, F.The design technique for a recursive digital filter with a maximally flat group delay at an arbitrary specified frequency is known. It is shown here that, for certain cases, the filter coefficients for high-pass and band-elimination recursive digital filters with a maximally flat group delay can be expressed in closed forms. - Some of the metrics are blocked by yourconsent settings
Item type:Item, An Alternative Simultaneous Maximally Flat Approximation for a Low-Pass Recursive Digital Filter(1979-01-01) ;Thajchayapong, P. ;Cheevasuvit, F.Karnchanawadee, P.Digital filters with either maximally flat magnitude or maximally flat group delay are known [1]–[3]. This paper offers an approach to the design of a recursive digital filter with simultaneous approximation to both magnitude and phase. Although the same Taylor norm is used, this described technique is different from the previous approach [4] in the sense that it employs a power series expansion around ω = 0 in the z-plane. It gives an alternative insight into the problem for the designers who are more familiar with the z-plane than the Richards' λ-plane. The filter transfer functions are obtained explicitly in closed forms. Copyright © 1979 by The Institute of Electrical and Electronics Engineers, Inc. - Some of the metrics are blocked by yourconsent settings
Item type:Item, A Design Technique for Transitional Butterworth-Chebyshev Filters(1979-01-01) ;Thajchayapong, P. ;Cheevasuvit, F.Suwatanapankul, V.For most of the given filter orders, the design technique reported recently [1] can generate neither a complete nor a gradual transition of filters between the Chebyshev and Butterworth extremes. An alternative design is proposed here without such difficulties. Copyright © 1979 by The Institute Of Electrical And Electronics Engineers, Inc. - Some of the metrics are blocked by yourconsent settings
Item type:Item, A recursive digital filter with simultaneous maximally flat magnitude and group delay at an arbitrary specified frequency(1979-01-01) ;Thajchayapong, P. ;Karnchanawadee, P.Cheevasuvit, F.A design technique for a recursive digital filter with simultaneously maximally flat magnitude and group delay at an arbitrary specified frequency is presented. It employs the power series expansion to formulate a set of simultaneous linear equations which can be solved with a standard computational algorithm. Copyright © 1979 by Thc Institute of Ekctrical and EkcuPnics Engineers, Inc. - Some of the metrics are blocked by yourconsent settings
Item type:Item, A Maximally Flat Group Delay Recursive Digital Filter with Improved Passband Magnitude Response(1979-01-01) ;Thajchayapong, P.Cheevasuvit, F.A technique is proposed for the design of a recursive digital filter with maximally flat responses in both magnitude and group delay. In comparison to the previous designs [1] -[3], the magnitude and group delay always show smooth responses no matter what the difference is in the polynomial degrees of the numerator and denominator. Copyright © 1979 by The Institute of Electrical and Electronics Engineers, Inc. - Some of the metrics are blocked by yourconsent settings
Item type:Item, Least-mean-square (minimum integrated power loss ratio) lowpass filters with a pair of imaginary-axis zeros(1978-04-27)Thajchayapong, P.If power is the main interest, then a class of filters with minimum integrated power loss ratio in the passband offers higher cutoff rate than the well known Butterworth filters. A technique is described to improve the cutoff rate further by introducing a pair of imaginary axis zeros, while the integrated power loss ratio in the passband is still kept at minimum. Other advantageous performances of the filters are also indicated. © 1978, The Institution of Electrical Engineers. All rights reserved. - Some of the metrics are blocked by yourconsent settings
Item type:Item, Sine-cosine squared-magnitude function for maximally flat digital bandpass filters with adjustable skirt selectivities(1979-01-01) ;Thajchayapong, P.Cheevasuvit, F.A sine-cosine squared-magnitude function for a digital bandpass filter is proposed. It offers a maximally flat pass-band magnitude response and more flexibility on the number of exchangeable zeros at ωT = 0 and ωT = π rad. © 1979, The Institution of Electrical Engineers. All rights reserved. - Some of the metrics are blocked by yourconsent settings
Item type:Item, Transitional butterworth-chebyshev filters(1978-09-28) ;Thajchayapong, P. ;Cheevasuvit, F.Manapee, S.A class of transitional Butterworth-Chebyshev filters is presented. The filters show gradual transition and, at the same time, maintain the equiripple peaks. © 1978, The Institution of Electrical Engineers. All rights reserved. - Some of the metrics are blocked by yourconsent settings
Item type:Item, A Recursive Digital Filter with Maximally Flat Linear Phase at an Arbitrary Specified Frequency(1978-01-01) ;Thajchayapong, P.Lomtong, P.An available recursive digital low-pass filter with constant group delay cannot be spectral transformed to give, for example, a bandpass filter which also has constant group delay. This correspondence describes a technique, using Gauss-Jordan elimination, to design a recursive digital filter with maximally flat linear phase at an arbitrary specified frequency. Copyright © 1978 by The Institute of Electrical and Electronics Engineers, Inc.
