Introduction to Bayesian Statistics 3/e (Hardcover)
暫譯: 貝葉斯統計學導論 第3版 (精裝本)
William M. Bolstad, James M. Curran
- 出版商: Wiley
- 出版日期: 2016-10-03
- 定價: $2,050
- 售價: 9.8 折 $2,009
- 語言: 英文
- 頁數: 624
- 裝訂: Hardcover
- ISBN: 1118091566
- ISBN-13: 9781118091562
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相關分類:
機率統計學 Probability-and-statistics
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相關翻譯:
貝葉斯統計導論 (簡中版)
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相關主題
商品描述
"...this edition is useful and effective in teaching Bayesian inference at both elementary and intermediate levels. It is a well-written book on elementary Bayesian inference, and the material is easily accessible. It is both concise and timely, and provides a good collection of overviews and reviews of important tools used in Bayesian statistical methods."
There is a strong upsurge in the use of Bayesian methods in applied statistical analysis, yet most introductory statistics texts only present frequentist methods. Bayesian statistics has many important advantages that students should learn about if they are going into fields where statistics will be used. In this third Edition, four newly-added chapters address topics that reflect the rapid advances in the field of Bayesian statistics. The authors continue to provide a Bayesian treatment of introductory statistical topics, such as scientific data gathering, discrete random variables, robust Bayesian methods, and Bayesian approaches to inference for discrete random variables, binomial proportions, Poisson, and normal means, and simple linear regression. In addition, more advanced topics in the field are presented in four new chapters: Bayesian inference for a normal with unknown mean and variance; Bayesian inference for a Multivariate Normal mean vector; Bayesian inference for the Multiple Linear Regression Model; and Computational Bayesian Statistics including Markov Chain Monte Carlo. The inclusion of these topics will facilitate readers' ability to advance from a minimal understanding of Statistics to the ability to tackle topics in more applied, advanced level books. Minitab macros and R functions are available on the book's related website to assist with chapter exercises. Introduction to Bayesian Statistics, Third Edition also features:
- Topics including the Joint Likelihood function and inference using independent Jeffreys priors and join conjugate prior
- The cutting-edge topic of computational Bayesian Statistics in a new chapter, with a unique focus on Markov Chain Monte Carlo methods
- Exercises throughout the book that have been updated to reflect new applications and the latest software applications
- Detailed appendices that guide readers through the use of R and Minitab software for Bayesian analysis and Monte Carlo simulations, with all related macros available on the book's website
Introduction to Bayesian Statistics, Third Edition is a textbook for upper-undergraduate or first-year graduate level courses on introductory statistics course with a Bayesian emphasis. It can also be used as a reference work for statisticians who require a working knowledge of Bayesian statistics.
商品描述(中文翻譯)
「...這一版在教授貝葉斯推斷方面對於初學者和中級學習者都非常有用且有效。這是一本關於初級貝葉斯推斷的優秀著作,內容易於理解。它既簡潔又及時,並提供了對貝葉斯統計方法中重要工具的良好概述和回顧。」
目前在應用統計分析中,貝葉斯方法的使用正在迅速上升,然而大多數入門統計教材僅介紹頻率主義方法。貝葉斯統計有許多重要的優勢,學生應該了解這些優勢,尤其是那些將進入需要使用統計的領域的學生。在這第三版中,新增的四個章節探討了反映貝葉斯統計領域快速進展的主題。作者繼續提供貝葉斯的入門統計主題處理,例如科學數據收集、離散隨機變數、穩健的貝葉斯方法,以及針對離散隨機變數、二項比例、泊松和正態均值及簡單線性回歸的貝葉斯推斷方法。此外,該領域的更高級主題在四個新章節中呈現:對未知均值和方差的正態分佈的貝葉斯推斷;對多變量正態均值向量的貝葉斯推斷;對多元線性回歸模型的貝葉斯推斷;以及包括馬可夫鏈蒙地卡羅的計算貝葉斯統計。這些主題的納入將促進讀者從對統計的基本理解進步到能夠處理更應用的高級書籍中的主題。Minitab 宏和 R 函數可在本書相關網站上獲得,以協助章節練習。Introduction to Bayesian Statistics, Third Edition 還具有以下特點:
- 主題包括聯合似然函數及使用獨立的 Jeffreys 先驗和聯合共軛先驗的推斷
- 在新章節中介紹計算貝葉斯統計的前沿主題,特別關注馬可夫鏈蒙地卡羅方法
- 全書的練習題已更新,以反映新的應用和最新的軟體應用
- 詳細的附錄指導讀者使用 R 和 Minitab 軟體進行貝葉斯分析和蒙地卡羅模擬,所有相關的宏可在本書網站上獲得
Introduction to Bayesian Statistics, Third Edition 是一本針對高年級本科生或第一年研究生的入門統計課程的教科書,強調貝葉斯方法。它也可以作為統計學家需要具備貝葉斯統計工作知識的參考書。