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Transactions of the American Mathematical Society

Published by the American Mathematical Society since 1900, Transactions of the American Mathematical Society is devoted to longer research articles in all areas of pure and applied mathematics.

ISSN 1088-6850 (online) ISSN 0002-9947 (print)

The 2020 MCQ for Transactions of the American Mathematical Society is 1.48.

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Visitations of ruled sums
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by Leonard E. Baum and H. H. Stratton PDF
Trans. Amer. Math. Soc. 182 (1973), 403-430 Request permission

Abstract:

Let $\{ {X_i}\}$ be a sequence of independent identically distributed random variables and for $D \subseteq {I^ + }$ let ${S_D} = {\Sigma _{i \in D}}{X_i}$. A rule $(\;)$ is a mapping ${I^ + } \to {2^{{I^ + }}}:\forall n|(n)| = n$ and ${S_{(\;)}} = \{ {S_{(n)}}\}$ is its associated ruled sum. Ruled sums generalize ordinary sums ${S_n}$. Indeed, all a.e. results for ${S_n}$ can be investigated for ${S_{(n)}}$ frequently requiring different methods and sometimes yielding different conclusions. In a previous paper we studied strong laws of large numbers and the law of the iterated logarithm. In this paper we study infinite visitation. Under suitable hypotheses on the basic distribution function F of the ${X_i}$ we show that, for all rules $(\;),{S_{(n)}}$ visits each integer infinitely often a.e. in the lattice case (or has all points of the real line as accumulation points in the nonlattice case). In fact we obtain a “rate of visitation.” There follows extensions of the Pólya theorem on encounters in the plane and 3-space from random walks to these ruled sums. Some equivalence relations and partial orderings on rules are defined. For normal variables this leads to an extension of the previously mentioned result for ruled sums of the type of the iterated logarithm law.
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Additional Information
  • © Copyright 1973 American Mathematical Society
  • Journal: Trans. Amer. Math. Soc. 182 (1973), 403-430
  • MSC: Primary 60G50; Secondary 60F20
  • DOI: https://doi.org/10.1090/S0002-9947-1973-0334326-5
  • MathSciNet review: 0334326