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Self-Normalized Processes - Limit Theory and Statistical Applications (Paperback, Softcover reprint of hardcover 1st ed. 2009):... Self-Normalized Processes - Limit Theory and Statistical Applications (Paperback, Softcover reprint of hardcover 1st ed. 2009)
Victor H. Pena, Tze Leung Lai, Qi-Man Shao
R3,684 Discovery Miles 36 840 Ships in 10 - 15 working days

Self-normalized processes are of common occurrence in probabilistic and statistical studies. A prototypical example is Student's t-statistic introduced in 1908 by Gosset, whose portrait is on the front cover. Due to the highly non-linear nature of these processes, the theory experienced a long period of slow development. In recent years there have been a number of important advances in the theory and applications of self-normalized processes. Some of these developments are closely linked to the study of central limit theorems, which imply that self-normalized processes are approximate pivots for statistical inference. The present volume covers recent developments in the area, including self-normalized large and moderate deviations, and laws of the iterated logarithms for self-normalized martingales. This is the first book that systematically treats the theory and applications of self-normalization.

Self-Normalized Processes - Limit Theory and Statistical Applications (Hardcover, 2009 ed.): Victor H. Pena, Tze Leung Lai,... Self-Normalized Processes - Limit Theory and Statistical Applications (Hardcover, 2009 ed.)
Victor H. Pena, Tze Leung Lai, Qi-Man Shao
R3,714 Discovery Miles 37 140 Ships in 10 - 15 working days

Self-normalized processes are of common occurrence in probabilistic and statistical studies. A prototypical example is Student's t-statistic introduced in 1908 by Gosset, whose portrait is on the front cover. Due to the highly non-linear nature of these processes, the theory experienced a long period of slow development. In recent years there have been a number of important advances in the theory and applications of self-normalized processes. Some of these developments are closely linked to the study of central limit theorems, which imply that self-normalized processes are approximate pivots for statistical inference.

The present volume covers recent developments in the area, including self-normalized large and moderate deviations, and laws of the iterated logarithms for self-normalized martingales. This is the first book that systematically treats the theory and applications of self-normalization.

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