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An Efficient Noise Generator for Validation of Channels Equalizers
Electrical Engineering, Konark Institute of Science & Technology, Bhubaneswar, Orissa, India
Electrical Engineering, Konark Institute of Science & Technology, Bhubaneswar, Orissa, India.
ITER, SOA University, Bhubaneswar, India
- 1 Electrical Engineering, Konark Institute of Science & Technology, Bhubaneswar, Orissa, India
- 2 Electrical Engineering, Konark Institute of Science & Technology, Bhubaneswar, Orissa, India.
- 3 ITER, SOA University, Bhubaneswar, India
Journal of Signal and Information Processing·Volume 02 (2011)·Pages 1–10·Published 22 February 2011·DOI10.4236/jsip.2011.21001
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Abstract
This paper develops an efficient pseudo-random number generator for validation of digital communication channels and secure disc. Drives. Simulation results validates the effectiveness of the random number generator.
KeywordsDigital CommunicationChannel Equalization
- Hard Disk Drives, http://www.storagereview.com /guide 2000/ref/hdd/index.html
- D. Davis, R. Ihaka and P. R. Fernstermacher, “CryptoGraphic Randomness from Air Turbulence in Disk Drives,” Proceedings of the 14th Annual International Crytology Conference, 1994.
- L. Hars, “Randomness of Timing Variations in Disk Drives,” Manuscript, 2007.
- E. Schreck and W. Ertel, “Disk Drive Generates High Speed Real Random Numbers,” MicrosystemTechnologies, Vol. 11, No. 8-10, 2005, pp. 616-622. doi:10.1007/s00542 -005-0532-6
- R. D. Cideciyan, F. Dolivo, R. Hermann, W. Hirt, and W. Schott, “A PRML System for Digital Magnetic Recording,” IEEE Journal on Selected Areas in Communications, Vol. 10, No. 1, 1992, pp. 38-56. doi:10.1109/49.124468
- B. Vasic, et al., “Coding and Signal Pro- cessing for Magnetic Recording Systems,” CRC Press, Boca Raton, Fla, 2005.
- C.-H. Wei and A. Chung, “Adaptive Signal Processing,” http://cwww.ee.nctu.edu.tw/course/asp
- Y.-S. Tang, “Noise Autocorrelation in Magnetic Recording Systems,” IEEE Transactions on Magnetics, Vol. 21, No. 5, 1985, pp. 1389-1391. doi:10.1109/TMAG. 1985.1064052
- J. R. Hoinville, R. S. Indeck and M. W. Muller, “Spatial Noise Phenomena of Longitudinal Magnetic Recording Media,” IEEE Transactions on Magnetics, Vol. 28, No. 6, 1992, pp. 3398-3406. doi:10.1109/20.179817
- R. S. Indeck, et al., “Noise Characterization of PerpenDicular Media,” Journal of the Magnetics Society of Japan, 1991.
- R. S. Indeck, et al., “Effect of Trackwidth and Linear Spacing on Stability and Noise in Longitudinal and Perpendicular Recording,” Journal of the Magnetics Society of Japan, 1997.
- R. Behrens and A. Armstrong, “An Advanced Read/Write Channel for Magnetic Disk Storage,” Proceedings of the 26th IEEE Asilomar Conference on Signals, Systems & Computers, October 1992, pp. 956-960.
- H. K. Thapar and A. M. Patel, “A Class of Partial Response Systems for Increasing Storage Density in Magnetic Recording,” IEEE Transactions on Magnetics, Vol. 23, No. 5, 1987, pp. 3666-3668. doi:10.1109/TMAG. 1987.1065230
- W. L. Abbott, J. M. Cioffi and H. K. Thapar, “Channel Equalization Methods for Magnetic Storage,” Proceedings of the IEEE International Conference on Communications, 1989, pp. 1618-1622,.
- W. L. Abbott, J. M. Cioffi and H. K. Thapar, “Performance of Digital Magnetic Recording with Equalization and Offtrack Interference,” IEEE Transactions on Magnetics, Vol. 27, No. 1, 1991, pp. 705-716. doi:10.1109/20.101120