1. Doubrava, L. J., "Design techniques for controlling point-of-load high frequency performance of power supplies," Proceedings of Powercon 6 (6th national solid-state power conversion conference) San Francisco, 1-16, May 1979. Google Scholar
2. Silvester, P. P. and R. L. Ferrari, Finite Elements for Electrcal Engineers, Cambridge University Press, 1990.
3. Mosig, J. R., "Integral equation technique," Numerical Techniques for Microwave and Milimeter-Wave Passive Structures, T. Itoh ed., Chap. 3, John-Wiley & Sons, 1989. Google Scholar
4. Yuan, F. Y., T. Postel, and L. Rubin, "Analysis and modelling of power distribution networks and plane structures in multichip modules and PCBs," IEEE 1995 Int. Symp. on EMC, 447-452, 1995. Google Scholar
5. Milsom, R. F., "Electromagnetic computer modelling for EMC (Integral methods)," IEE Proc. Science, Measurement and Technology, Vol. 141, No. 4, 297-302, Jul. 1994.
doi:10.1049/ip-smt:19941186 Google Scholar
6. PSPICE Version 6.0 User Manual, Microsim Coporation, 1993.
7. Johnson, B., T. Quarles, A. R. Newton, D. O. Pederson, and A. Sangiovanni-Vicentelli, SPICE3 Version 3e User’s Manual, Dept. of EE and Comp. Sci, University of Calif., Berkeley, Apr. 1991.
8. Wei, C., R. F. Harrington, J. R. Mautz, and T. K. Sarkar, "Multiconductor transmission lines in multilayered dielectric media," IEEE Trans. MTT, Vol. 32, No. 4, 439-449, Apr. 1984.
doi:10.1109/TMTT.1984.1132696 Google Scholar
9. Ruehli, A. E., "Inductance Calculations in a complex integrated circuit environment," IBM J. Rex. Develop., 470-480, Sep. 1972.
doi:10.1147/rd.165.0470 Google Scholar
10. Dworsky, L. N., Modern Transmission Line Theory and Applications, John Wiley & Sons, 1979.
11. Djordjevic, A. R., T. K. Sarkar, and R. F. Harrington, "Time-domain response of multiconductor transmission lines," Proceedings of the IEEE, Vol. 75, No. 6, 743-764, Jun. 1987.
doi:10.1109/PROC.1987.13797 Google Scholar
12. Paul, C. R., "A simple SPICE model for coupled transmission lines," Proc. IEEE 1988 Inter. Symp. on EMC, 327-333, 1988. Google Scholar
13. Benedek, P. and P. Silvester, "Equivalent capacitances for microstrip gaps and steps," IEEE Trans. MTT, Vol. MTT-20, No. 11, 729-733, Nov. 1972.
doi:10.1109/TMTT.1972.1127861 Google Scholar
14. Silvester, P. and P. Benedek, "Microstrip discontinuity capacitances for right-angle bends, T junctions, and crossings," IEEE Trans. MTT, Vol. MTT-21, No. 5, 34-346, May 1973. Google Scholar
15. Thomson, A. F. and A. Gopinath, "Calculation of microstrip discontinuity inductance," IEEE Trans. MTT, Vol. MTT-23, No. 8, 648-655, Aug. 1975.
doi:10.1109/TMTT.1975.1128643 Google Scholar
16. Easter, B., "The equivalent circuit of some microstrip discontinuities," IEEE Trans. MTT, Vol. MTT-23, No. 8, 655-660, Aug. 1975.
doi:10.1109/TMTT.1975.1128644 Google Scholar
17. Harms, P. H. and R. Mittra, "Equivalent circuits for multiconductor microstrip bend discontinuities," IEEE Trans. MTT, Vol. 41, No. 1, 62-69, Jan. 1993.
doi:10.1109/22.210230 Google Scholar
18. Jong, J. M., L. A. Hayden, and V. K. Tripathi, "Impedance-loss profile characterization of interconnection strutures," ISHM 1994 Proceedings, 13-18, 1994. Google Scholar
19. Jong, J. M., V. K. Tripathi, and B. Janko, "Equivalent circuit modelling of interconnects from time domain measurement," IEEE Trans. Compondent, Hybrids and Manufacturing Technology, Vol. 16, 119-126, Feb. 1993.
doi:10.1109/33.214868 Google Scholar
20. Kung, F. W. L. and H. T. Chuah, "Modeling of power planes in printed circuit board using planar circuit approach," JEWA, Vol. 11, 1229-1247, 1997. Google Scholar
21. Collin, R. E., Foundation for Microwave Engineering, McGraw-Hill Inc., 1992.
22. Kung, F. W. L., "Modeling of High-speed Printed Circuit Board,", MEngSc Dissertation, Faculty of Engineering, University of Malaya, 1997. Google Scholar
23. Balanis, C. A., Advanced Engineering Electromagnetics, John Wiley & Sons, 1989.
24. Hp application note 62-3 "Advanced TDR Techniques,", Apr. 1990. Google Scholar
25. Tektrnix application note "TDR tools in modelling interconnects and packages,", Tektronix Inc., 1993. Google Scholar
26. Wismer, D. A. and R. Chattergy, Introduction to Nonlinear Optimization --- A Problem Solving Approach, Elsevier North-Holland Inc., 1978.
27. Vendelin, G. D., A. M. Pavio, and U. L. Rohde, Microwave Circuit Design --- Using Linear and Nonlinear Techniques, John Wiley & Sons, 1990.
28. Bandler, J. W., S. H. Chen, and S. Daijavad, "Microwave device modeling using efficient l1 optimization: A novel approach," IEEE Trans. MTT, Vol. MTT-34, No. 12, 1282-1292, Dec. 1986.
doi:10.1109/TMTT.1986.1133540 Google Scholar
29. Bandler, J. W., W. Kellermann, and K. Madsen, "A non-linear l1 optimization algorithm for design, modeling and diagnosis of networks," IEEE Trans. on Circuits and System, Vol. CAS-24, No. 2, 174-181, Feb. 1987.
doi:10.1109/TCS.1987.1086100 Google Scholar
30. Hobbs, W., A. Muranyi, R. Rosenbaum, and D. Telian, IBIS: I/O Buffer Information Specification Overview, Intel Oregon, Intel Corp., Nov. 1993.
31. IBIS Version 2.1 IBIS Open Forum, Dec. 1994. *this specification can be obtained at internet http://vhdl.org/pub/ibis.
32. Paul, C. R., "A comparison of contribution of common-mode and differential-mode currents in radiated emissions," IEEE Trans. EMC, Vol. 31, No. 2, 189-193, May 1989. Google Scholar
33. Naishadham, K., J. B. Berry, and H. Hejase, "Full-wave analysis of radiated emission from arbitrarily shaped printed circuit traces," IEEE Trans. EMC, Vol. 35, 366-376, Aug. 1993. Google Scholar