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J. L. Wyatt, L. O. Chua, J. W. Gannett, I. C. Goknar, and D. N. Green, “Energy concept in the state-space theory of nonlinear n-ports: Part I—Passivity,” IEEE Trans. Circuits Syst., vol. CAS-28, pp. 48–61, Jan. 1981.
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73
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Energy-related concepts for nonlinear time-varying n-ports: passivity and losslessness
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J. W. Gannett and L. O. Chua, “Energy-related concepts for nonlinear time-varying n-ports: passivity and losslessness,” Int. J. Circuit Theory Appl., vol. 9, pp. 401–429, 1981.
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Int. J. Circuit Theory Appl.
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Gannett, J.W.1
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Apr.
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P. J. Moylan, L. O. Chua, and E. W. Szeto, “When is a device passive?” Int. J. Circuit Theory Appl., vol. 10, pp. 151–165, Apr. 1982
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Int. J. Circuit Theory Appl.
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Moylan, P.J.1
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75
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0020155354
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Energy concepts in the state space theory of the nonlinear n-ports: Part II-Losslessness
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July
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J. L. Wyatt, Jr., L. O. Chua, J. W. Gannett, I. C. Goknar, and D. N. Green, “Energy concepts in the state space theory of the nonlinear n-ports: Part II-Losslessness,” IEEE Trans. Circuits Syst., vol. CAS-29, pp. 417–430, July 1982.
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76
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L. O. Chua and E. W. Szeto, “State space theory of nonlinear two-terminal higher-order elements,” Journal of the Franklin Institute, 1983.
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Journal of the Franklin Institute
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Chua, L.O.1
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77
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July
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L. O. Chua and S. Wong, “Synthesis of piecewise-linear networks,” IEEE J. Electronic Circuits and Systems, vol. 2, no. 4, pp. 102–108, July 1978.
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IEEE J. Electronic Circuits and Systems
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Chua, L.O.1
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78
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0020735720
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Negative resistance devices
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L. O. Chua, J. Yu, and Y. Yu, “Negative resistance devices,” Int. J. of Circuit Theory and Applications, vol. 11, 1983, pp. 161–186.
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Int. J. of Circuit Theory and Applications
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79
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Electronics Research Laboratory, University of California, Berkeley, ERL Memo UCB/ERL M82/84, November 15
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L. O. Chua, J. Yu, and Y. Yu, “ Bipolar-JFET-MOSFET negative resistance devices,” Electronics Research Laboratory, University of California, Berkeley, ERL Memo UCB/ERL M82/84, November 15, 1982.
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(1982)
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Chua, L.O.1
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80
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84936900897
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The rotator—a new network component
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Sept.
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L. O. Chua, “The rotator—a new network component,” Proc. IEEE, vol. 55, pp. 1566–1577, Sept. 1967.
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Proc. IEEE
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Chua, L.O.1
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81
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Rotator and reflector for transfer functions
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G. A. Nenov, and H. Z. Shojlev, “Rotator and reflector for transfer functions,” Electron. Lett. vol. 12, 213–214, 1976.
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83
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Aug.
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L. O. Chua, “Synthesis of new nonlinear network elements,” Proc. IEEE, vol. 56, pp. 1325–1340, Aug. 1968.
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Proc. IEEE
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The linear transformation converter and its application to the synthesis of nonlinear networks
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Nov.
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L. O. Chua, “The linear transformation converter and its application to the synthesis of nonlinear networks,” IEEE Trans. Circuit Theory, vol. 17, pp. 584–594, Nov. 1970.
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IEEE Trans. Circuit Theory
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Chua, L.O.1
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85
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0016128567
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J. L. Huertas, J. A. Acha, and A. Gago, “Design of general voltage or current controlled resistive elements and their application to the synthesis of nonlinear networks,” IEEE Trans. Circuits Syst., vol. CAS-27, pp. 92–103, Feb. 1980.
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J. L. Huertas, “D-T adaptor,” Int. J. Circuit Theory Appl., vol. 8, no. 3, pp. 273–290, July 1980.
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J. L. Huertas, J. I. Acha, and A. Gago, “Theory of D-T linear transformation circuits,” IEEE Trans. Circuits Syst., vol. CAS-27, pp. 724–729, Aug. 1980.
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94
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0018035219
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A global representation of multidimensional piecewise-linear functions with linear partitions
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November
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S. M. Kang and L. O. Chua, “A global representation of multidimensional piecewise-linear functions with linear partitions,” IEEE Trans. Circuits Syst., vol. CAS-25, pp. 938–940, November 1978.
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Kang, S.M.1
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Canonical piecewise-linear circuit analysis
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L. O. Chua and R. Ying, “Canonical piecewise-linear circuit analysis,” IEEE Trans. Circuits Syst., vol. CAS-30, pp. 125–140, Mar. 1983.
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96
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Section-wise piecewise-linear functions: Canonical representation, properties and applications
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June
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L. O. Chua and S. M. Kang, “Section-wise piecewise-linear functions: Canonical representation, properties and applications,” Proc. IEEE, pp. 915–929, June 1977.
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Proc. IEEE
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T. Fujisawa and E. S. Kuh, “Piecewise-linear theory of nonlinear networks,” SIAM J. Appl., Math., vol. 22, pp. 307–328, Mar. 1972.
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99
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0019021155
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Synthesis of reciprocal piecewise-lin-ear n-port resistors
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May
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L. O. Chua and D. Curtin, “Synthesis of reciprocal piecewise-lin-ear n-port resistors,” IEEE Trans. Circuits Syst., vol. CAS-27, pp. 367–380, May 1980.
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100
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The (p +q)-port transformer
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L. O. Chua and G. N. Lin, “The (p +q)-port transformer,” Int. J. Circuit Theory Appl., vol. 10, pp. 335–339, Oct. 1982.
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J. L. Huertas and A. Rueda, Synthesis of resistive n-port section-wise piecewise-linear networks,” IEEE Trans. Circuits Syst., vol. CAS-29, pp. 6–14, Jan. 1982.
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J. L. Huertas and A. Gago, “On the realization of arbitrary linear resistive n-port networks,” IEEE J. Electronic Circuits and Systems, vol. 3, no. 6, 247–252, Nov. 1979.
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Huertas, J.L.1
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104
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0019079281
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Device modeling via basic nonlinear circuit element
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Nov.
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L. O. Chua, “Device modeling via basic nonlinear circuit element,” IEEE Trans. Circuits Syst., vol. 27, pp. 1014–1044, Nov. 1980.
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Chua, L.O.1
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105
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4344627241
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Traditors, a new class of non-energic nonlinear network elements
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S. Duinker, “Traditors, a new class of non-energic nonlinear network elements,” Philips Res. Reps., vol. 14, pp. 29–51, 1959.
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Memristor—The missing circuit element
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Sept.
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L. O. Chua, “Memristor—The missing circuit element,” IEEE Trans. Circuit Theory, vol. 18, 507–519, Sept. 1971.
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IEEE Trans. Circuit Theory
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L. O. Chua and E. W. Szeto, “Synthesis of higher order nonlinear circuit elements,” IEEE Trans. Circuits Syst., to be published.
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IEEE Trans. Circuits Syst.
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L. O. Chua and Y-F. Lam, “Decomposition and synthesis of nonlinear n-ports IEEE Trans. Circuits Syst., vol. CAS-21, Sept. 1975, pp. 662–666.
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Chua, L.O.1
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Sept.
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J. L. Wyatt, Jr., L. O. Chua, and G. Oster, “Nonlinear n-port decomposition via the Laplace operator,” IEEE Trans, Circuits Syst., vol. CAS-25, pp. 741–754, Sept. 1978.
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Wyatt, J.L.1
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113
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0016348551
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A memristive circuit model for P-N junction diodes
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Dec.
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L. O. Chua and C-W. Tseng, “A memristive circuit model for P-N junction diodes,” Int. J. Circuit Theory Appl., vol. 2, no. 4, pp. 367–389, Dec. 1974.
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A nonlinear circuit model for IMPATT diodes
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May
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J. W. Gannett and L. O. Chua, “A nonlinear circuit model for IMPATT diodes,” IEEE Trans. Circuits Syst., vol. CAS-25, pp. 299–308, May 1978.
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Gannett, J.W.1
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115
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0018021494
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A nonlinear lumped circuit model for Gunn diodes
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Oct.
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L. O. Chua and Y. W. Sing, “A nonlinear lumped circuit model for Gunn diodes,” Int. J. Circuit Theory Appl., vol. 6, pp. 375–408, Oct. 1978.
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Chua, L.O.1
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116
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Nonlinear lumped circuit model for SCR
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Jan.
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L. O. Chua and Y. W. Sing, “Nonlinear lumped circuit model for SCR,” IEE J. Electronic Circuits and Systems, vol. 3, no. 1, pp. 5–14, Jan. 1979.
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IEE J. Electronic Circuits and Systems
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Chua, L.O.1
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117
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0020780525
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Nonlinear lumped circuit model for GaAs FET
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L. O. Chua and Y. W. Sing_, “Nonlinear lumped circuit model for GaAs FET,” IEEE Trans. Electron Devices, vol. ED-30, 825–833, 1983.
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IEEE Trans. Electron Devices
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118
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Lumped circuit models for nonlinear inductors exhibiting hysteris loops
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Nov.
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L. O. Chua and K. A. Stromsmoe, “Lumped circuit models for nonlinear inductors exhibiting hysteris loops,” IEEE Trans. Circuit Theory, vol. CT-17, pp. 564–574, Nov. 1970.
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(1970)
IEEE Trans. Circuit Theory
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A generalized hysteresis model
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Jan.
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L. O. Chua and S. C. Bass, “A generalized hysteresis model,” IEEE Trans. Circuit Theory, vol. 19, no. 1, pp. 36–48, Jan. 1972.
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IEEE Trans. Circuit Theory
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120
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Memristive devices and systems
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Feb.
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L. O. Chua and S. M. Kang, “Memristive devices and systems,” Proc. IEEE, vol. 64, pp. 209–223, Feb. 1976.
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Proc. IEEE
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Chua, L.O.1
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Dynamic model for the analog multiplier
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Feb.
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A. Baranyi and L. O. Chua, “Dynamic model for the analog multiplier,” IEEE Trans. Circuits Syst., vol. CAS-29, pp. 65–76, Feb. 1982.
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Expansions for nonlinear systems
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Feb.
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I. W. Sandberg, “Expansions for nonlinear systems,” Bell Syst. Tech. J., vol. 61, pp. 159–200, Feb. 1982.
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A generalized fock space framework for nonlinear system and signal analysis
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Sept.
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R. J. P. de Figueiredo, “A generalized fock space framework for nonlinear system and signal analysis,” IEEE Trans. Circuits Syst., vol. CAS-30, pp. 637–647, Sept. 1983.
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Aug.
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M. Fliess, M. Lamnabi, and F. Lamnabi-Lagarrique, “An algebraic approach to nonlinear functional expansions,” IEEE Trans. Circuits Syst., vol. CAS-30, pp. 554–570, Aug. 1983.
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IEEE Trans. Circuits Syst.
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Frequency-domain analysis of weakly nonlinear networks, ‘canned’ Volterra analysis, Parts 1 and 2
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Y. L. Kuo, “Frequency-domain analysis of weakly nonlinear networks, ‘canned’ Volterra analysis, Parts 1 and 2,” IEEE Trans. Circuits Syst., vol. 11, pp. 2–8 and pp. 2–6, 1977.
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Frequency domain analysis of nonlinear systems: General theory
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July
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L. O. Chua and C. Y. Ng, “Frequency domain analysis of nonlinear systems: General theory,” I EE J. Electronic Circuits and Systems, vol. 3, no. 4, pp. 165–185, July 1979.
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Frequency domain analysis of nonlinear systems: Formulation of transfer functions
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Nov.
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L. O. Chua and C. Y. Ng“Frequency domain analysis of nonlinear systems: Formulation of transfer functions,” IEE J. Electronic Circuits and Systems, vol. 3, no. 6, pp. 257–267, Nov. 1979.
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(1979)
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Models of the Structural-Functional Organization of Certain Biological Systems
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Der mutierende Transfor-mationsvierpol und Moglichkeiten seiner Realisierung, “The Mutating transformation two port and its realisation
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Vortragsreihe Theoretische Elektrotechnik
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E. Philippow and A. Schindler “Der mutierende Transfor-mationsvierpol und Moglichkeiten seiner Realisierung, “The Mutating transformation two port and its realisation.” in 20th IWK TH llmenau, 1975, Vortragsreihe Theoretische Elektrotechnik.
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Synthese nichtlinearer zwei-maschiger Netzwerke auf Grund einervorgeschriebenen Dif-ferentialgleichung,” “Synthesis of nonlinear networks with two loops on the bases of a prescribed differential equation
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VII. ICNO Abhandlungen der AdW der DDR, Abt. Mathematik, Naturwissenschaften, Technik B. II, 2 Nr. GN
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E. Philippow and J. Donner, “Synthese nichtlinearer zwei-maschiger Netzwerke auf Grund einervorgeschriebenen Dif-ferentialgleichung,” “Synthesis of nonlinear networks with two loops on the bases of a prescribed differential equation,” VII. ICNO Abhandlungen der AdW der DDR, Abt. Mathematik, Naturwissenschaften, Technik B. II, 2 Nr. GN, 1977.
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Ein Algorithmus zur Synthese von zweimaschigen Netzwerken.” “An Algorithm for the synthesis of networks with two loops (nonlinear)
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Synthese nichtlinearer elektrischer Netzwerke mit vorgeschriebenem periodischem Verhalten.” “Synthesis of nonlinear electric networks with prescribed periodic behavior
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E. S. Philippow, “Synthese nichtlinearer elektrischer Netzwerke mit vorgeschriebenem periodischem Verhalten.” “Synthesis of nonlinear electric networks with prescribed periodic behavior” in Proc. 8th ICNO (Prague, Czechoslovakia), 1978.
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Anwendung künstlicher Elemente hoherer Ordnung in selektiven Schaltungen.” “Application of artifical elements of higher order in selective circuits
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E. Philippow and P. Bruckner, “Anwendung künstlicher Elemente hoherer Ordnung in selektiven Schaltungen.” “Application of artifical elements of higher order in selective circuits.” 23rd IWK TH llmenau 1978, Vortragsreihe Theoretische Elektrotechn.
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Eine Möglichkeit zur Synthese von Netzwerken fur Schwingungen mit mehr als einem Extremwert in der Halbperiode” “A possibility for the synthesis of networks of oscillations with more than one extreme value in a half period
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Vortragsreihe Theoretische Elektrotechnik
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E. Philippow, “Eine Möglichkeit zur Synthese von Netzwerken fur Schwingungen mit mehr als einem Extremwert in der Halbperiode” “A possibility for the synthesis of networks of oscillations with more than one extreme value in a half period.” 23rd IWK TH llmenau 1978, Vortragsreihe Theoretische Elektrotechnik.
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A contribution to the theory of artifical elements of higher order
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Beitrag zur Theorie der künstlichen Elemente höherer Ordnung
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E. Philippow and M. Rheinhardt, Beitrag zur Theorie der künstlichen Elemente höherer Ordnung. “A contribution to the theory of artifical elements of higher order.” 26th IWK llmenau 1981.
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Rheinhardt, M.2
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Die Memristorübertragungsfunktion als mathematisches Modell zur Synthese von heteronomen Schwingungen, ” “The memristor transfer function as mathematical model for the synthesis of heteronom oscillations
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E. Philippow and U Delor, “Die Memristorübertragungsfunktion als mathematisches Modell zur Synthese von heteronomen Schwingungen,” “The memristor transfer function as mathematical model for the synthesis of heteronom oscillations,” in Wiss. Zeitschrift der TH llmenau 28, vol. 2, 1982.
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Ein Beitrag zur Theorie der Frequenzteilung,” “A contribution to the theory of frequency dividing
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TH llmenau, Germany
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E. Philippow and D. T. Ta, “Ein Beitrag zur Theorie der Frequenzteilung,” “A contribution to the theory of frequency dividing, in Proc. 2nd ISTET (Int. Symp. on Theoretical Electrical (TH llmenau, Germany), 1983.
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A contribution of using elements of higher order for modelling the Bipolar-transistor
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Ein Beitrag zur Verwendung von Elementen hoherer Ordnung zur Modellierung des Bipolartransistors
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E. Philippow and W. Jakubenko, Ein Beitrag zur Verwendung von Elementen hoherer Ordnung zur Modellierung des Bipolartransis-tors. “A contribution of using elements of higher order for modelling the Bipolar-transistor,” Zeitschrift fũr Informations- und En-ergietechnik Leipzig 13(1983)5.
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(1983)
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E. Филиннов and в. и. Казан “Математическое снисание и устойчиьость пеней с исиусмьенными елеменмами ьысокогонореядка” Енергетика—Избестня Высших ычебных Заведении. Москва: Мин. Высшего переднего Специаьного Образоваинч cccpľ” Mathematici description and stability of networks containing elements of higher order. Mathematische Be¬Schreibung und” Stabihtät von Netzwerken, die Elemente höherer Ordnung enthalten.
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E. Philippow and D. T. Ta, “Frequency Dividing Networks Modelling, Analysis and Networksynthesis,” Frequenzteilernetzwerke Modellierung, Analyse und Netzwerksynthese,” in ISCAS-Proc. I SCAS 1984 (Montreal, Canada).
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Synthesis of oscillators with prescribed properties
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