Core Statistics Core Statistics
    • ‏46٫99 US$

وصف الناشر

Based on a starter course for beginning graduate students, Core Statistics provides concise coverage of the fundamentals of inference for parametric statistical models, including both theory and practical numerical computation. The book considers both frequentist maximum likelihood and Bayesian stochastic simulation while focusing on general methods applicable to a wide range of models and emphasizing the common questions addressed by the two approaches. This compact package serves as a lively introduction to the theory and tools that a beginning graduate student needs in order to make the transition to serious statistical analysis: inference; modeling; computation, including some numerics; and the R language. Aimed also at any quantitative scientist who uses statistical methods, this book will deepen readers' understanding of why and when methods work and explain how to develop suitable methods for non-standard situations, such as in ecology, big data and genomics.

النوع
علم وطبيعة
تاريخ النشر
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٢٧ مارس
اللغة
EN
الإنجليزية
عدد الصفحات
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الناشر
Cambridge University Press
البائع
Cambridge University Press
الحجم
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‫م.ب.‬
Handbook in Monte Carlo Simulation Handbook in Monte Carlo Simulation
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Introducing Monte Carlo Methods with R Introducing Monte Carlo Methods with R
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Probabilistic Graphical Models Probabilistic Graphical Models
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The Probability Companion for Engineering and Computer Science The Probability Companion for Engineering and Computer Science
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An Introduction to Econometric Theory An Introduction to Econometric Theory
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Bayesian Essentials with R Bayesian Essentials with R
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The Surprising Mathematics of Longest Increasing Subsequences The Surprising Mathematics of Longest Increasing Subsequences
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Introduction to Malliavin Calculus Introduction to Malliavin Calculus
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Probability on Graphs: Second Edition Probability on Graphs: Second Edition
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Lectures on the Poisson Process Lectures on the Poisson Process
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Noise Sensitivity of Boolean Functions and Percolation Noise Sensitivity of Boolean Functions and Percolation
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