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Data Mining: Practical Machine Learning Tools and Techniques (Morgan Kaufmann Series in Data Management Systems) 4th Edition
Data Mining: Practical Machine Learning Tools and Techniques, Fourth Edition... teaches readers everything they need to know to get going, from preparing inputs, interpreting outputs, evaluating results, to the algorithmic methods at the heart of successful data mining approaches.
Data Mining: Practical Machine Learning Tools and Techniques (Morgan Kaufmann Series in Data Management Systems) 4th Edition
Item #: 4574364

Data Mining: Practical Machine Learning Tools and Techniques (Morgan Kaufmann Series in Data Management Systems) 4th Edition

Item #: 4574364

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Data Mining: Practical Machine Learning Tools and Techniques, Fourth Edition... teaches readers everything they need to know to get going, from preparing inputs, interpreting outputs, evaluating results, to the algorithmic methods at the heart of successful data mining approaches.
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What Stands Out

Comprehensive Coverage
This edition offers extensive insights into data mining techniques, making it perfect for both beginners and advanced practitioners looking to harness machine learning tools effectively.
Real-World Applications
The book provides practical examples and case studies, addressing real-world problems and demonstrating how data mining can be applied to various industries.
Expert Contributions
Authored by leading experts, it combines theoretical knowledge with practical savvy, ensuring readers gain a deep understanding of machine learning's best practices.

Product Details

Get the latest edition of Data Mining: Practical Machine Learning Tools and Techniques at Ubuy, your Tanzania for all your book needs. Shop now!
  • Thorough grounding in machine learning concepts and practical advice for real world data mining
  • Extensive updates reflecting modernizations and new chapters on probabilistic methods and deep learning
  • Accompanied by a new version of the popular WEKA machine learning software from the University of Waikato
  • Comprehensive teaching resource with Powerpoint slides, online appendix, and table of contents on book companion website
  • Concrete tips and techniques for performance improvement in machine learning methods
  • Includes downloadable WEKA software toolkit, open access online courses, and reviews of the 1st edition
Publisher Morgan Kaufmann
Publication date December 1, 2016
Edition 4th
Language English
Print length 654 pages
ISBN-10 0128042915
ISBN-13 978-0128042915
Item Weight 2.31 pounds (1.05 kg)
Dimensions 7.5 x 1.48 x 9.25 inches (19.1 x 3.8 x 23.5 cm)
Part of series The Morgan Kaufmann Series in Data Management Systems

Who Should Buy?

Suitable For
  • Data Scientists

    Ideal for data scientists looking for comprehensive insights and practical tools to implement machine learning algorithms.

  • Academic Researchers

    Suitable for researchers needing a solid resource for understanding data mining methods and practical applications in studies.

  • Students

    Beneficial for university students in data science or related fields, providing clear explanations and relevant machine learning techniques.

Not Suitable For
  • Complete Beginners

    Not suitable for those with no prior knowledge of data mining or machine learning concepts and terminologies.

Product Description

Data Mining: Practical Machine Learning Tools and Techniques (Morgan Kaufmann Series in Data Management Systems) 4th Edition

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Customer Questions & Answers

  • Question: What is the primary focus of 'Data Mining: Practical Machine Learning Tools and Techniques'?

    Answer: The book primarily focuses on the principles of data mining and practical machine learning techniques. It covers a range of methods including classification, regression, clustering, and association rules, providing both theoretical foundations and practical examples. By utilizing real-world use cases, it helps readers understand how to apply these techniques effectively in various industries, making it an essential resource for data scientists and analysts.
  • Question: Who is the target audience for this book?

    Answer: This book is targeted at students, professionals, and researchers in the fields of computer science, data science, and machine learning. It serves as a comprehensive guide for those looking to deepen their understanding of data mining techniques and their applications. Readers who work in sectors such as finance, healthcare, and marketing will find the insights particularly beneficial for real-world problem-solving in data-driven environments.
  • Question: What new features are included in the 4th edition of this book?

    Answer: The 4th edition features updated content that reflects the latest advancements in machine learning tools and techniques. With an emphasis on evolving analytics environments, it includes new chapters on deep learning, big data technologies, and more practical software tools. Such enhancements ensure readers can leverage current technologies and methodologies, making the insights applicable to modern industry challenges.
  • Question: How does this book compare to other data mining and machine learning texts?

    Answer: This book stands out due to its practical orientation and hands-on approach. While many texts tend to focus primarily on theory, this book integrates real data mining problems with software applications, making the learning process more relevant and practical. Readers gain experience not just in understanding concepts but also in implementing them, which is crucial for effective data analysis in professional settings.
  • Question: What kind of programming skills do I need to effectively use the tools discussed in this book?

    Answer: While prior programming experience can enhance your understanding, the book is written to accommodate various skill levels. It introduces necessary programming concepts that can be applied using popular tools like Python and R. Beginners will benefit from clear explanations, while more experienced users can dive deeper into advanced techniques and programming applications to solve complex data challenges.
  • Question: Can the techniques in this book be applied to large datasets?

    Answer: Yes, the techniques outlined in the book are designed to be applicable to large datasets, making them suitable for big data analytics. The principles of scalability are discussed thoroughly, and techniques such as sampling and distributed computing are covered to help readers work with extensive data efficiently. These strategies are particularly valuable for professionals dealing with growing data volumes in industries like finance and e-commerce.
  • Question: Are there any online resources or support available for readers of this book?

    Answer: Yes, accompanying resources may be available through the publisher, including supplementary datasets, code examples, and instructor materials. These resources can enhance the understanding of the topics discussed and provide practical tools for experimentation. Engaging in online forums or communities related to machine learning can also provide additional support and collaboration opportunities for readers.
  • Question: Is this book suitable for self-study?

    Answer: Absolutely, this book is well-suited for self-study thanks to its structured approach and detailed examples. Each chapter progressively builds upon the previous ones, allowing readers to learn at their own pace. The practical exercises and case studies encourage hands-on learning, making it an excellent choice for individuals looking to develop their skills independently in data mining and machine learning.
  • Question: What prerequisites should I have before reading this book?

    Answer: While the book is designed to cater to a range of skill levels, a basic understanding of statistics and familiarity with programming concepts will greatly enhance your learning experience. Additionally, knowledge of fundamental computer science principles can help in grasping more complex data mining techniques discussed within the text. This foundational knowledge prepares readers for practical application in real-world scenarios.
  • Question: Where can I buy 'Data Mining: Practical Machine Learning Tools and Techniques Morgan Kaufmann Series in Data Management Systems 4th Edition' in Tanzania?

    Answer: You can buy 'Data Mining: Practical Machine Learning Tools and Techniques Morgan Kaufmann Series in Data Management Systems 4th Edition' from Ubuy. Ubuy is a versatile online shopping platform that offers a wide range of books, making it convenient for customers in Tanzania to order and access this essential resource on data mining and machine learning.

Intelligence & Semantics Editorial Review

The book "Data Mining: Practical Machine Learning Tools and Techniques" by Ian H. Witten, Eibe Frank, and Mark A. Hall is a comprehensive guide that includes practical descriptions and examples for most machine learning methods and algorithms. It is an easy-to-read book that provides a good introduction to machine learning for beginners, although it has some issues that may limit its usefulness. One of the main problems is that the language used in the book is very esoteric, making it difficult to follow for those who are not familiar with the terminology. Additionally, the book's structure is somewhat confusing and disorganized, making it hard to gain in-depth knowledge of any particular method. Customers have reported dissatisfaction with the software Weka, which is used in the book, stating that it is not ideal for big data and has a poorly designed user interface that accepts minimal hyperparameters. The GUI interface may start to glitch, rendering the screen choppy. The book's author, Ian Witten, also received criticism from some customers for being cryptic and unhelpful in his Youtube videos.

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Pros

  • Comprehensive guide that includes practical descriptions and examples for most machine learning methods and algorithms
  • Easy to understand and read

Cons

  • Language used in the book is very esoteric, making it difficult to follow for those who are not familiar with the terminology

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