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The Law of the Iterated Logarithm and Central Limit Theorem for L-Statistics
Authors:Deli Li   M. Bhaskara Rao  R. J. Tomkins  
Affiliation:a Lakehead University, Thunder Bay, Canada;b North Dakota State University;c University of Regina, Regina, Canada
Abstract:The Chung–Smirnov law of the iterated logarithm and the Finkelstein functional law of the iterated logarithm for empirical processes are used to establish new results on the central limit theorem, the law of the iterated logarithm, and the strong law of large numbers for L-statistics with certain bounded and smooth weight functions. These results are used to obtain necessary and sufficient conditions for almost sure convergence and for convergence in distribution of some well-known L-statistics and U-statistics, including Gini's mean difference statistic. A law of the logarithm for weighted sums of order statistics is also presented.
Keywords:central limit theorem   empirical process   laws of the iterated logarithm   L-statistics   strong law of large numbers
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