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5.11: References

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    46080
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    [14] R. Jackson, “Criteria for the onset of oscillation in microwave circuits,” IEEE Trans. On Microwave Theory and Techniques, vol. 40, no. 3, pp. 566–569, Mar. 1992.

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    [30] S. Kogan, Electronic Noise and Fluctuations in Solids. Cambridge University Press, 1996.

    [31] A. Hajimiri and T. Lee, “A general theory of phase noise in electrical oscillators,” IEEE J. of Solid-State Circuits, vol. 33, no. 2, pp. 179– 194, Feb. 1998.

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    [34] G. Wornell and A. Oppenheim, Signal Processing with Fractals: A Wavelet-Based Approach. Prentice Hall, 1996.

    [35] G. Wornell, “Wavelet-based representations for the \(1/f\) family of fractal processes,” Proc. of the IEEE, vol. 81, no. 10, pp. 1428–1450, Oct. 1993.

    [36] N. Kriplani, “Modelling colored noise under large-signal conditions,” Ph.D. dissertation, North Carolina State University, 2005.

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    [38] B. Mandelbrot, The Fractal Geometry of Nature. Times Books, 1982.

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    [40] M. Schroeder, Fractals, Chaos, Power Laws: Minutes from an Infinite Paradise. Dover Publications, 2009.

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    [42] R. Devaney, A First Course in Chaotic Dynamical Systems. Perseus Book, 1992.

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    [44] R. Bhansali, M. Holland, and P. Kokoszka, “Chaotic maps with slowly decaying correlations and intermittency,” in Fields Institute Communications: Asymptotic Methods in Stochastics, L. Horv´ath and B. Szyszkowicz, Eds., 2004, p. •.

    [45] R. May, “Simple mathematical models with very complicated dynamics,” Nature, vol. 261, no. 5560, pp. 459–467, June 1976.

    [46] T. Kawabe and Y. Kondo, “Intermittent chaos generated by logarithmic map,” Progress of Theoretical Physics, vol. 86, no. 3, pp. 581–586, 1991.

    [47] M. Holland, “Slowly mixing systems and intermittency maps,” Ergodic Theory and Dynamical System, vol. 25, no. 1, pp. 133–159, Feb. 2005.

    [48] E. Simoen, A. Mercha, L. Pantisano, C. Claeys, and E. Young, “Low-frequency noise behavior of SiO2–HfO2 dual-layer gate dielectric nMOSFETs with different interfacial oxide thickness,” IEEE Trans. on Electron Devices, vol. 51, no. 5, pp. 780–784, May 2004.

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    [51] E. Bibbona, G. Panfilo, and P. Tavella, “The ornstein-uhlenbeck process as a model of a low pass filtered white noise,” Metrologia, vol. 45, no. 6, pp. S117–S126, Dec. 2008.

    [52] A. Suarez, Analysis and Design of Autonomous Microwave Circuits. John Wiley & Sons, Inc., 2009.

    [53] A. Hati, C. Nelson, and D. Howe, “Effect of vibration on P and AM noise of oscillatory and non-oscillatory components at \(10\text{ GHz}\),” in 2009 IEEE Int. Frequency Control Symp., Joint with the 22nd European Frequency and Time Forum, Apr. 2009, pp. 524–529.

    [54] W. Robins, Phase Noise in Signal Sources. Peter Peregrinus Ltd., 1982.

    [55] M. Buckingham, Noise in Electronic Devices and Systems. Ellis Horwood, 1983.

    [56] P. Antognetti and G. Massobrio, Semiconductor Device Modeling with SPICE. McGrawHill, 1988.

    [57] A. van der Ziel, X. Zhang, and A. Pawlikiewicz, “Location of \(1/f\) noise sources in BJT’s and HBJT’s—i. theory,” IEEE Trans. on Electron Devices, vol. 33, no. 9, pp. 1371–1376, Sep. 1986.

    [58] C. Green and B. Jones, “\(1/f\) noise in bipolar transistors,” J. Phys. D: Appl. Phys., vol. 18, pp. 77–91, 1985.


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