Matrix Analysis for Statistics, 3/e (Hardcover)
Schott, James R.
- 出版商: Wiley
- 出版日期: 2016-06-20
- 定價: $1,540
- 售價: 9.8 折 $1,509
- 語言: 英文
- 頁數: 552
- 裝訂: Hardcover - also called cloth, retail trade, or trade
- ISBN: 1119092485
- ISBN-13: 9781119092483
-
相關分類:
機率統計學 Probability-and-statistics
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商品描述
An up-to-date version of the complete, self-contained introduction to matrix analysis theory and practice
Providing accessible and in-depth coverage of the most common matrix methods now used in statistical applications, Matrix Analysis for Statistics, Third Edition features an easy-to-follow theorem/proof format. Featuring smooth transitions between topical coverage, the author carefully justifies the step-by-step process of the most common matrix methods now used in statistical applications, including eigenvalues and eigenvectors; the Moore-Penrose inverse; matrix differentiation; and the distribution of quadratic forms.
An ideal introduction to matrix analysis theory and practice, Matrix Analysis for Statistics, Third Edition features:
- New chapter or section coverage on inequalities, oblique projections, and antieigenvalues and antieigenvectors
- Additional problems and chapter-end practice exercises at the end of each chapter
- Extensive examples that are familiar and easy to understand
- Self-contained chapters for flexibility in topic choice
- Applications of matrix methods in least squares regression and the analyses of mean vectors and covariance matrices
Matrix Analysis for Statistics, Third Edition is an ideal textbook for upper-undergraduate and graduate-level courses on matrix methods, multivariate analysis, and linear models. The book is also an excellent reference for research professionals in applied statistics.
James R. Schott, PhD, is Professor in the Department of Statistics at the University of Central Florida. He has published numerous journal articles in the area of multivariate analysis. Dr. Schott's research interests include multivariate analysis, analysis of covariance and correlation matrices, and dimensionality reduction techniques.
商品描述(中文翻譯)
《矩陣分析統計學》第三版是一本全面且獨立的矩陣分析理論和實踐介紹的最新版本。本書以易於理解的定理/證明格式,提供了對統計應用中最常用的矩陣方法的深入且易於接觸的涵蓋。作者精心解釋了統計應用中最常用的矩陣方法的逐步過程,包括特徵值和特徵向量、Moore-Penrose逆、矩陣微分和二次形式的分佈。
作為矩陣分析理論和實踐的理想入門書,《矩陣分析統計學》第三版具有以下特點:
- 新增了關於不等式、斜投影和反特徵值和反特徵向量的章節
- 每章末尾新增了額外的問題和練習題
- 大量易於理解且熟悉的例子
- 獨立的章節,方便選擇不同的主題
- 在最小二乘回歸和均值向量及協方差矩陣分析中應用矩陣方法
《矩陣分析統計學》第三版是大學高年級和研究生課程中矩陣方法、多變量分析和線性模型的理想教材。本書也是應用統計學研究專業人士的優秀參考書。
詹姆斯·R·舒特博士是佛羅里達中央大學統計學系的教授。他在多變量分析領域發表了許多期刊文章。舒特博士的研究興趣包括多變量分析、協方差和相關矩陣分析以及降維技術。
作者簡介
James R. Schott, PhD, is Professor in the Department of Statistics at the University of Central Florida. He has published numerous journal articles in the area of multivariate analysis. Dr. Schott's research interests include multivariate analysis, analysis of covariance and correlation matrices, and dimensionality reduction techniques.
作者簡介(中文翻譯)
James R. Schott博士是佛羅里達中央大學統計學系的教授。他在多變量分析領域發表了許多期刊文章。Schott博士的研究興趣包括多變量分析、共變異數和相關矩陣分析,以及降維技術。