Linear instability and statistical laws of physics

We show that a meaningful statistical description is possible in conservative and mixing systems with zero Lyapunov exponent in which the dynamical instability is only linear in time. More specifically, i) the sensitivity to initial conditions is given by $ \xi =[1+(1-q)\lambda_q t]^{1/(1-q)}$ with...

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Published in:Europhysics letters Vol. 72; no. 3; pp. 355 - 361
Main Authors: Casati, G, Tsallis, C, Baldovin, F
Format: Journal Article
Language:English
Published: IOP Publishing 01-11-2005
EDP Sciences
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Summary:We show that a meaningful statistical description is possible in conservative and mixing systems with zero Lyapunov exponent in which the dynamical instability is only linear in time. More specifically, i) the sensitivity to initial conditions is given by $ \xi =[1+(1-q)\lambda_q t]^{1/(1-q)}$ with $q=0$; ii) the statistical entropy $S_q=(1-\sum_i p_i^q)/(q-1)\ (S_1=-\sum_i p_i \ln p_i)$ in the infinitely fine graining limit (i.e., $W\equiv$ number of cells into which the phase space has been partitioned $\to\infty$), increases linearly with time only for $q=0$; iii) a nontrivial, q-generalized, Pesin-like identity is satisfied, namely the $\lim_{t \to \infty} \lim_{W \to \infty} S_0(t)/t=\max\{\lambda_0\}$. These facts (which are in analogy to the usual behaviour of strongly chaotic systems with $q=1$), seem to open the door for a statistical description of conservative many-body nonlinear systems whose Lyapunov spectrum vanishes.
Bibliography:ark:/67375/80W-2F78JK7P-S
publisher-ID:epl8995
istex:8B62665E793FD68EC21D327D04878E90DD755BB1
ObjectType-Article-2
SourceType-Scholarly Journals-1
ObjectType-Feature-1
content type line 23
ISSN:0295-5075
1286-4854
DOI:10.1209/epl/i2005-10248-2