Differential Geometry and Statistics Differential Geometry and Statistics
    • ‏239٫99 US$

وصف الناشر

Several years ago our statistical friends and relations introduced us to the work of Amari and Barndorff-Nielsen on applications of differential geometry to statistics. This book has arisen because we believe that there is a deep relationship between statistics and differential geometry and moreoever that this relationship uses parts of differential geometry, particularly its 'higher-order' aspects not readily accessible to a statistical audience from the existing literature. It is, in part, a long reply to the frequent requests we have had for references on differential geometry! While we have not gone beyond the path-breaking work of Amari and Barndorff- Nielsen in the realm of applications, our book gives some new explanations of their ideas from a first principles point of view as far as geometry is concerned. In particular it seeks to explain why geometry should enter into parametric statistics, and how the theory of asymptotic expansions involves a form of higher-order differential geometry. The first chapter of the book explores exponential families as flat geometries. Indeed the whole notion of using log-likelihoods amounts to exploiting a particular form of flat space known as an affine geometry, in which straight lines and planes make sense, but lengths and angles are absent. We use these geometric ideas to introduce the notion of the second fundamental form of a family whose vanishing characterises precisely the exponential families.

النوع
علم وطبيعة
تاريخ النشر
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١٩ أكتوبر
اللغة
EN
الإنجليزية
عدد الصفحات
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الناشر
CRC Press
البائع
Taylor & Francis Group
الحجم
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‫م.ب.‬
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Geometry of Classical Fields Geometry of Classical Fields
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Differential Geometry of Manifolds Differential Geometry of Manifolds
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Differential Geometry: Questions and Answers Differential Geometry: Questions and Answers
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The Variational Theory of Geodesics The Variational Theory of Geodesics
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A Comprehensive Introduction to Sub-Riemannian Geometry A Comprehensive Introduction to Sub-Riemannian Geometry
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Introduction to Time Series Modeling with Applications in R Introduction to Time Series Modeling with Applications in R
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Markov Models & Optimization Markov Models & Optimization
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Statistical Evidence Statistical Evidence
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Statistical Inference Statistical Inference
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Hierarchical Modeling and Analysis for Spatial Data Hierarchical Modeling and Analysis for Spatial Data
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Robust Small Area Estimation Robust Small Area Estimation
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