Fundamentals of Machine Learning for Predictive Data Analytics : Algorithms, Worked Examples, and Case Studies, 2/e (Hardcover)
暫譯: 預測數據分析的機器學習基礎:演算法、實作範例與案例研究,第二版(精裝本)
Kelleher, John D., Mac Namee, Brian, D'Arcy, Aoife
- 出版商: MIT
- 出版日期: 2020-10-20
- 定價: $1,450
- 售價: 9.8 折 $1,421
- 語言: 英文
- 頁數: 856
- 裝訂: Hardcover - also called cloth, retail trade, or trade
- ISBN: 0262044692
- ISBN-13: 9780262044691
-
相關分類:
Machine Learning、Algorithms-data-structures、Data Science
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商品描述
The second edition of a comprehensive introduction to machine learning approaches used in predictive data analytics, covering both theory and practice.
Machine learning is often used to build predictive models by extracting patterns from large datasets. These models are used in predictive data analytics applications including price prediction, risk assessment, predicting customer behavior, and document classification. This introductory textbook offers a detailed and focused treatment of the most important machine learning approaches used in predictive data analytics, covering both theoretical concepts and practical applications. Technical and mathematical material is augmented with explanatory worked examples, and case studies illustrate the application of these models in the broader business context. This second edition covers recent developments in machine learning, especially in a new chapter on deep learning, and two new chapters that go beyond predictive analytics to cover unsupervised learning and reinforcement learning.
The book is accessible, offering nontechnical explanations of the ideas underpinning each approach before introducing mathematical models and algorithms. It is focused and deep, providing students with detailed knowledge on core concepts, giving them a solid basis for exploring the field on their own. Both early chapters and later case studies illustrate how the process of learning predictive models fits into the broader business context. The two case studies describe specific data analytics projects through each phase of development, from formulating the business problem to implementation of the analytics solution. The book can be used as a textbook at the introductory level or as a reference for professionals.
商品描述(中文翻譯)
本書第二版是對於用於預測數據分析的機器學習方法的全面介紹,涵蓋理論與實踐。
機器學習通常用於通過從大型數據集中提取模式來建立預測模型。這些模型被應用於預測數據分析的應用中,包括價格預測、風險評估、預測客戶行為和文檔分類。本入門教科書詳細且專注地探討了在預測數據分析中使用的最重要的機器學習方法,涵蓋理論概念和實際應用。技術和數學材料輔以解釋性範例,案例研究則展示了這些模型在更廣泛商業背景中的應用。本第二版涵蓋了機器學習的最新發展,特別是在深度學習的新章節,以及兩個超越預測分析的章節,涵蓋無監督學習和強化學習。
本書易於理解,對每種方法背後的理念提供非技術性的解釋,然後再介紹數學模型和算法。內容專注且深入,為學生提供核心概念的詳細知識,為他們獨立探索該領域打下堅實基礎。早期章節和後期案例研究展示了學習預測模型的過程如何融入更廣泛的商業背景。這兩個案例研究描述了特定數據分析項目在每個開發階段的過程,從制定商業問題到實施分析解決方案。本書可用作入門級的教科書或專業人士的參考書。
作者簡介
John D. Kelleher is Academic Leader of the Information, Communication, and Entertainment Research Institute at Technological University Dublin. He is the coauthor of Data Science and the author of Deep Learning, both in the MIT Press Essential Knowledge series.
Brian Mac Namee is Associate Professor at the School of Computer Science at University College Dublin
Aoife D'Arcy is CEO of Krisolis, a data analytics company based in Dublin.
作者簡介(中文翻譯)
約翰·D·凱勒赫(John D. Kelleher)是都柏林科技大學(Technological University Dublin)資訊、通信與娛樂研究所的學術領導者。他是《數據科學》(Data Science)的共同作者,以及《深度學習》(Deep Learning)的作者,這兩本書均為麻省理工學院出版社(MIT Press)精華知識系列的一部分。
布萊恩·麥克·內米(Brian Mac Namee)是都柏林大學(University College Dublin)計算機科學學院的副教授。
艾菲·達西(Aoife D'Arcy)是位於都柏林的數據分析公司Krisolis的首席執行官。