
doi: 10.1137/1102014
Let $(X_j ),j = 1,2, \cdots $, be a sequence of independent random variables with the distribution functions $V_j (x)$. We assume the existence of ${\bf D}X_j = \sigma _j^2 ,s_n^2 = \sum\nolimits_{j = 1}^n {\sigma _j^2 } ,{\bf E}X_j = 0,j = 1,2, \cdots $. We put \[ Z_n = \sum\limits_{j = 1}^n X_j /s_n . \]With the aid of the saddlepoint method of function theory several local limit theorems are derived, in complete analogy to the previously known integral limit theorems for large deviations of H. Cramer [1] and V. Petrov [5]. These authors considered the behavior of the function ${\bf P}\{ Z_n < x\} = F_n (x)$ for $n \to \infty $, where x together with n becomes infinite (“large deviations”). V. Petrov generalized Cramer’s theorem from the case of identically distributed $X_j $ to the general case and at the same time improved the remainder term and the growth of x. The present work shows that their method of proof, namely the introduction of a definite transformation of the distribution laws of the $X_j ...
probability theory
probability theory
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