Statistical Theory and Inference Statistical Theory and Inference

Statistical Theory and Inference

    • ‏69٫99 US$
    • ‏69٫99 US$

وصف الناشر

This text is for  a one semester graduate course in statistical theory and covers minimal and complete sufficient statistics, maximum likelihood estimators, method of moments, bias and mean square error, uniform minimum variance estimators and the Cramer-Rao lower bound, an introduction to large sample theory, likelihood ratio tests and uniformly most powerful  tests and the Neyman Pearson Lemma. A major goal of this text is to make these topics much more accessible to students by using the theory of exponential families.

Exponential families, indicator functions and the support of the distribution are used throughout the text to simplify the theory. More than 50 ``brand name" distributions are used to illustrate the theory with many examples of exponential families, maximum likelihood estimators and uniformly minimum variance unbiased estimators. There are many homework problems with over 30 pages of solutions.

النوع
علم وطبيعة
تاريخ النشر
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٧ مايو
اللغة
EN
الإنجليزية
عدد الصفحات
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الناشر
Springer International Publishing
البائع
Springer Nature B.V.
الحجم
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‫م.ب.‬
Examples and Problems in Mathematical Statistics Examples and Problems in Mathematical Statistics
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Probability and Statistical Inference Probability and Statistical Inference
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Asymptotic Theory of Statistics and Probability Asymptotic Theory of Statistics and Probability
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Large Sample Techniques for Statistics Large Sample Techniques for Statistics
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Self-Normalized Processes Self-Normalized Processes
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Introduction to Probability and Statistics Introduction to Probability and Statistics
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Robust Multivariate Analysis Robust Multivariate Analysis
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Linear Regression Linear Regression
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