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نام کتاب
Data Mining and Machine Learning

Fundamental Concepts and Algorithms
Mohammed J. Zaki, Wagner Meira Jr 

Print Length761 Pages
PublisherCambridge
Edition2
LanguageEnglish
Year2020
ISBN9781108473989
1K
A1937
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کیفیت متن:اورجینال انتشارات
قطع:B5
رنگ صفحات:سیاه و سفید
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#Data_Mining

#Machine_Learning

#data_science

#algorithms

#algebraic

#geometric

#deep_learning

توضیحات

The fundamental algorithms in data mining and machine learning form the basis of data science, utilizing automated methods to analyze patterns and models for all kinds of data in applications ranging from scientific discovery to business analytics.

This textbook for senior undergraduate and graduate courses provides a comprehensive, in-depth overview of data mining, machine learning and statistics, offering solid guidance for students, researchers, and practitioners. The book lays the foundations of data analysis, pattern mining, clustering, classification and regression, with a focus on the algorithms and the underlying algebraic, geometric, and probabilistic concepts. New to this second edition is an entire part devoted to regression methods, including neural networks and deep learning.

Review

‘This book by Mohammed Zaki and Wagner Meira, Jr is a great option for teaching a course in data mining or data science. It covers both fundamental and advanced data mining topics, explains the mathematical foundations and the algorithms of data science, includes exercises for each chapter, and provides data, slides and other supplementary material on the companion website.' Gregory Piatetsky-Shapiro, Founder of the Association for Computing Machinery's Special Interest Group on Knowledge Discovery and Data Mining (ACM SIGKDD)

‘World-class experts, providing an encyclopedic coverage of all datamining topics, from basic statistics to fundamental methods (clustering, classification, frequent itemsets), to advanced methods (SVD, SVM, kernels, spectral graph theory, deep learning). For each concept, the book thoughtfully balances the intuition, the arithmetic examples, as well the rigorous math details. It can serve both as a textbook, as well as a reference book.' Christos Faloutsos, Carnegie Mellon University, Pennsylvania, and winner of the ACM SIGKDD Innovation Award


Book Description

New to the second edition of this advanced text are several chapters on regression, including neural networks and deep learning.

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