Presentation 2004-06-17
A Binary-Quantized Two-Dimensional Cellular Array Model of Diffusion Systems
Daisuke HAMANO, Hisato FUJISAKA,
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Abstract(in English) A binary-quantized two-dimensional cellular array model of linear diffusion systems is investigated microscopically by introducing virtual particles. Deterministic rules applied to all the cells of the array determine the motion of the particles in the array. The discontinuous velocity of the particles has almost uniform frequency spectrum distribution and delta-function-like autocorrelation. Moreover, the cross correlation between x- and y-directional components of the velocity is almost zero. Thus, the virtual particles whose behavior is deterministic possess almost the same characteristics that probabilistic Brownian particles in diffusion systems have.
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Keyword(in English) cellular array / binary-quantization / diffusion system / Brownian motion / pseudo-random
Paper # NLP2004-17
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Committee NLP
Conference Date 2004/6/10(1days)
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Registration To Nonlinear Problems (NLP)
Language JPN
Title (in Japanese) (See Japanese page)
Sub Title (in Japanese) (See Japanese page)
Title (in English) A Binary-Quantized Two-Dimensional Cellular Array Model of Diffusion Systems
Sub Title (in English)
Keyword(1) cellular array
Keyword(2) binary-quantization
Keyword(3) diffusion system
Keyword(4) Brownian motion
Keyword(5) pseudo-random
1st Author's Name Daisuke HAMANO
1st Author's Affiliation Faculty of information Science, Hiroshima City University()
2nd Author's Name Hisato FUJISAKA
2nd Author's Affiliation Faculty of information Science, Hiroshima City University
Date 2004-06-17
Paper # NLP2004-17
Volume (vol) vol.104
Number (no) 112
Page pp.pp.-
#Pages 6
Date of Issue