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Area distribution and the average shape of a Lévy bridge

Published 28 Apr 2010 in cond-mat.stat-mech and math.PR | (1004.5046v1)

Abstract: We consider a one dimensional L\'evy bridge x_B of length n and index 0 < \alpha < 2, i.e. a L\'evy random walk constrained to start and end at the origin after n time steps, x_B(0) = x_B(n)=0. We compute the distribution P_B(A,n) of the area A = \sum_{m=1}n x_B(m) under such a L\'evy bridge and show that, for large n, it has the scaling form P_B(A,n) \sim n{-1-1/\alpha} F_\alpha(A/n{1+1/\alpha}), with the asymptotic behavior F_\alpha(Y) \sim Y{-2(1+\alpha)} for large Y. For \alpha=1, we obtain an explicit expression of F_1(Y) in terms of elementary functions. We also compute the average profile < \tilde x_B (m) > at time m of a L\'evy bridge with fixed area A. For large n and large m and A, one finds the scaling form < \tilde x_B(m) > = n{1/\alpha} H_\alpha({m}/{n},{A}/{n{1+1/\alpha}}), where at variance with Brownian bridge, H_\alpha(X,Y) is a non trivial function of the rescaled time m/n and rescaled area Y = A/n{1+1/\alpha}. Our analytical results are verified by numerical simulations.

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