The False Discovery Rate: Its Meaning, Interpretation and Application in Data Science (虛假發現率:意義、解釋與在數據科學中的應用)
Galwey, N. W.
- 出版商: Wiley
- 出版日期: 2024-11-04
- 售價: $3,350
- 貴賓價: 9.5 折 $3,183
- 語言: 英文
- 頁數: 288
- 裝訂: Hardcover - also called cloth, retail trade, or trade
- ISBN: 1119889774
- ISBN-13: 9781119889779
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相關分類:
Data Science
海外代購書籍(需單獨結帳)
相關主題
商品描述
An essential tool for statisticians and data scientists seeking to interpret the vast troves of data that increasingly power our world
First developed in the 1990s, the False Discovery Rate (FDR) is a way of describing the rate at which null hypothesis testing produces errors. It has since become an essential tool for interpreting large datasets. In recent years, as datasets have become ever larger, and as the importance of 'big data' to scientific research has grown, the significance of the FDR has grown correspondingly.
The False Discovery Rate provides an analysis of the FDR's value as a tool, including why it should generally be preferred to the Bonferroni correction and other methods by which multiplicity can be accounted for. It offers a systematic overview of the FDR, its core claims, and its applications.
Readers of The False Discovery Rate will also find:
- Case studies throughout, rooted in real and simulated data sets
- Detailed discussion of topics including representation of the FDR on a Q-Q plot, consequences of non-monotonicity, and many more
- Wide-ranging analysis suited for a broad readership
The False Discovery Rate is ideal for Statistics and Data Science courses, and short courses associated with conferences. It is also useful as supplementary reading in courses in other disciplines that require the statistical interpretation of "big data.' The book will also be of great value to statisticians and researchers looking to learn more about the FDR.
商品描述(中文翻譯)
一個對於統計學家和數據科學家來說至關重要的工具,旨在解釋日益增長的數據量,這些數據越來越多地驅動著我們的世界。
假發現率(False Discovery Rate, FDR)最早於1990年代開發,是一種描述虛無假設檢驗產生錯誤的比率的方法。自那時以來,它已成為解釋大型數據集的基本工具。近年來,隨著數據集變得越來越龐大,以及「大數據」對科學研究的重要性日益增長,FDR的重要性也相應地增長。
《假發現率》提供了FDR作為工具的價值分析,包括為何它通常應該優於Bonferroni修正和其他考慮多重性的方法。它提供了FDR的系統性概述、其核心主張及其應用。
《假發現率》的讀者還將發現:
- 整本書中都有基於真實和模擬數據集的案例研究
- 詳細討論包括在Q-Q圖上表示FDR的主題、非單調性的後果等
- 適合廣泛讀者的多元分析
《假發現率》非常適合統計學和數據科學課程,以及與會議相關的短期課程。它也可作為其他學科課程中需要對「大數據」進行統計解釋的補充閱讀。這本書對於希望深入了解FDR的統計學家和研究人員也將具有很大的價值。
作者簡介
N. W. GALWEY is a Statistics Leader, Research Statistics, at GlaxoSmithKline Research and Development (Retired).
作者簡介(中文翻譯)
N. W. GALWEY 是葛蘭素史克研究與開發部的統計領導者(已退休)。