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Sensivity Performance of ALL-Pole Canonical Low-Pass Gm-C Filters

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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
In the paper, sensivity properties of all-pole canonical low-pass Gm-C filters are investigated. The two most important representatives of this class are leap-frog and inverse follow-the-leader structures. We present a general structure of all-pole cononical low-pass filter of arbitrary order as well as its matrix description. The formulas for sensivity functions are also given. The comparison of sensivity properties for canonical structures up to 10th order is performed for Butterworth, Chebyshev and Bessel filters. Design guidelines that follow from the presented results are also discussed.
Rocznik
Strony
313--340
Opis fizyczny
Bibliogr. 29 poz., 18 rys., 15 tab.
Twórcy
autor
  • Technical University of Gdańsk, Faculty of Electronics, telecommunications and Informatics, Narutowicza 11/12, 80-952 Gdańsk, Poland (Wydział Elektroniki, Telekomunikacji i Informatyki, Politechnika Gdańska)
  • Technical University of Gdańsk, Faculty of Electronics, telecommunications and Informatics, Narutowicza 11/12, 80-952 Gdańsk, Poland (Wydział Elektroniki, Telekomunikacji i Informatyki, Politechnika Gdańska)
Bibliografia
  • [1] R. Schaumann, M.S. Ghausi, K.R. Laker, Design of analog filters, passive, active RC, and switched capacitor, Englewood Cliff, NJ: Prentice-Hall 1990.
  • [2] T. Deliyannis, Y. Sun, J. K. Fidler, Continuous-time active filter design, CRC Press, USA 1999.
  • [3] M.A. Tan, R. Schaumann, Design of a general biquadratic filter section with only transconductances and grounded capacitors, IEEE Trans. Circuits Syst.-II, 35 (1988) 478-480.
  • [4] G. Groenewold, Optimal dynamic range integrated continuous-time filters, Delft, The Netherlands: Delft Univ. Press, 1992.
  • [5] G. Groenewold, The design of high dynamic range continuous-time integratable bandpass filters, IEEE Trans. Circuits and Syst., 38, 8, (1991) 838-852.
  • [6] B. Nauta, Analog CMOSfilters for very high frequencies, Kluwer Academic Publishers, 1993. :
  • [7] J. Silva-Martinez, M.S. J. Steyaert, W. Sansen, A 10.7MHz 68-dB CMOScontinuous-time filter with on-chip automating tuning, IEEE J. Solid-State Circuits, 27, 12, (1992) 1843-1853.
  • [8] R. Allini, A. Baschirotto, R. Castello, Tuneable BiCMOS continuous-time filter for high-frequency applications, IEEE J. Solid-State Circuits, 27, 12, (1992) 1905-1915.
  • [9] Y. P. Tsividis, Integrated continuous-time filter design - An overview, IEEE J. Solid-State Circuits, 29 (1994) 166-176.
  • [10] S. Szczepanski, J. Jakusz, R. Schaumann, A linear CMOS OTA for VHF applications, IEEE Trans. Circuits Syst.-II, 44 (1997) 174-187.
  • [11] J. Mahattanakul, C. Toumazou, Current-mode versus voltage-mode Gm-C biquadfilters: what the theory says, IEEE Trans. Circuits Syst.-II, 45 (1998) 173-186.
  • [12] J. Glinianowicz, J. Jakusz, S. Szczepanski, Y. Sun, High frequency two-input CMOS OTA for continuous-time filter applications, IEE Proc.-Circuits Dev. Syst., 147, 1, (2000) 13-18.
  • [13] D. H. Chiang, R. Schaumann, Pefrormance comparison of high-order IFLF and cascade analogue integrated lowpass filters, IEE Proc.-Circuits Dev. Syst., 147, 1, (2000) 19-27.
  • [14] EB. Sanchez-Sinencio, J. Silva-Martinez, CMOS transconductance amplifiers, architectures and active filters: a tutorial, IEE Proc.-Circuits Dev. Syst., 147, 1, (2000).
  • [15] C.C. Hsu, W.S. Feng, Structural generation of current-mode filters using tunable multiple-output OTAs and grounded capacitors, IEICE Trans. Fund. Elect. Comm. Comp. Sc., E83A, 9, (2000) 1778-1785.
  • [16] G. W. Roberts, A.S. Sedra, A general class of current amplifier-based biquadratic filter circuits, IEEE Trans. Circuits Syst.-I, 38 (1992) 257-263.
  • [17] G.W. Roberts, A.S. Sedra, All current-mode frequency selective circuits, Electron. Lett., 25 (1989) 759-761.
  • [18] S. Kozieł, S. Szczepański, Dynamic range comparison of voltage-mode and current-mode state-space Gm-C Biquad Filters, in Proc. Int. Conf. Electron. Circuits, Syst., ICECS, II (2001) 819-822.
  • [19] S. Kozieł, S. Szczepański, General description of state-space continuous-time Gm-C Filters, Electron. Telecommun. Q, 48, 3-4, (2002) 499-521.
  • [20] J. D. Schoeffler, The synthesis of minimum sensitivity networks, IEEE Trans. Circuit Theory, 11 (1964) 271-276.
  • [21] R. Mackay, A.S. Sedra, Generation of low-sensitivity state-space active filters, IEEE Trans. Circuit Syst., CAS-27 (1980) 863-870.
  • [22] D. H. Chiang, R. Schaumann, Performance comparison of high-order IFLF and cascade analogue integrated lowpass filters, IEE Proc.-Circ. Dev. Syst., 147, 1, (2000) 19-27.
  • [23] J. Seidler, A. Badach, W. Molisz, Metody rozwigzywania zadan optymalizacji, WNT Warszawa 1980.
  • [24] T. Beck, F. Hoffmeister, H-P. Schwefel, A survey of evolution strategies, Proc. 4th International Conference on Genetic Algorithms (ICGA), R.K.Belew, L.B.Booker (eds), Morgan Kaufmann Publ., 2-9 (1991).
  • [25] Z. Michalewicz, Genetic algorithms + data structures = evolution programs, Springer-Verlag, Berlin Heidelberg 1996.
  • [26] S. Koziel, Sensitivity properties of all-pole canonical low-pass Gm-C filters, raport wewnętrzny Wydziału ETI Politechniki Gdańskiej nr 09/2001.
  • [27] K.R. Laker, R. Schaumann, M.S. Ghausi, Multiple-loop feedback topologies for the design of low-sensitivity active filters, IEEE Trans. Circuits Syst., CAS 26 (1979) 1-21.
  • [28] Y. Sun, J. K. Fidler, Structure generation and design of multiple loop feedback OTA-grounded capacitor filters, IEEE Trans. Circuits Syst., Part I, 43 (1997) 1-11.
  • [29] R. L. Geiger, E. Snchez-Sinencio, Active filter design using operational transconductance amplifiers: A tutorial, IEEE Circuit and Devices Mag., 1 (1985) 20-32.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BPG1-0010-0055
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