Introduction to Machine Learning, fourth edition (Adaptive Computation and Machine Learning series)
This substantially revised fourth edition offers new coverage of recent advances in the field in both theory and practice, including developments in deep learning and neural networks.
Introduction to Machine Learning, fourth edition (Adaptive Computation and Machine Learning series)
منتج #: 33244183

Introduction to Machine Learning, fourth edition (Adaptive Computation and Machine Learning series)

منتج #: 33244183

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This substantially revised fourth edition offers new coverage of recent advances in the field in both theory and practice, including developments in deep learning and neural networks.
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Comprehensive Coverage
This edition offers an extensive overview of machine learning techniques, including the latest advancements, ensuring readers grasp fundamental concepts and practical applications.
Accessible Learning
Designed for both beginners and advanced learners, the clear explanations and examples facilitate understanding complex topics, making machine learning approachable and engaging.
Adaptive Computation Insights
Leveraging the Adaptive Computation and Machine Learning series, this book emphasizes efficient algorithms and adaptive systems, providing readers with valuable insights into real-world machine learning challenges.

تفاصيل المنتج

Discover the latest edition of the bestselling book, Introduction to Machine Learning. Explore the world of adaptive computation and machine learning. Order now at Ubuy البحرين.
  • A substantially revised fourth edition of a comprehensive textbook, including new coverage of recent advances in deep learning and neural networks.The goal of machine learning is to program computers to use example data or past experience to solve a given problem. Machine learning underlies such exciting new technologies as self-driving cars, speech recognition, and translation applications. This substantially revised fourth edition of a comprehensive, widely used machine learning textbook offers new coverage of recent advances in the field in both theory and practice, including developments in deep learning and neural networks.The book covers a broad array of topics not usually included in introductory machine learning texts, including supervised learning, Bayesian decision theory, parametric methods, semiparametric methods, nonparametric methods, multivariate analysis, hidden Markov models, reinforcement learning, kernel machines, graphical models, Bayesian estimation, and statistical testing. The fourth edition offers a new chapter on deep learning that discusses training, regularizing, and structuring deep neural networks such as convolutional and generative adversarial networks; new material in the chapter on reinforcement learning that covers the use of deep networks, the policy gradient methods, and deep reinforcement learning; new material in the chapter on multilayer perceptrons on autoencoders and the word2vec network; and discussion of a popular method of dimensionality reduction, t-SNE. New appendixes offer background material on linear algebra and optimization. End-of-chapter exercises help readers to apply concepts learned. Introduction to Machine Learning can be used in courses for advanced undergraduate and graduate students and as a reference for professionals.
Publisher The MIT Press
Publication date March 24, 2020
Edition 4th
Language English
Print length 712 pages
ISBN-10 0262043793
ISBN-13 978-0262043793
Item Weight 3.22 pounds (1.46 kg)
Dimensions 8.31 x 1.46 x 9.37 inches (21.1 x 3.7 x 23.8 cm)

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Suitable For
  • Students in ML

    Ideal for undergraduate or graduate students pursuing machine learning courses, providing foundational concepts and practical applications.

  • Data Scientists

    Data professionals seeking to enhance their understanding of machine learning techniques and algorithms for real-world projects.

  • Self-learners

    Individuals motivated to independently learn machine learning, benefiting from comprehensive explanations and approachable examples.

Not Suitable For
  • Beginners in Programming

    Complete novices may struggle with advanced concepts without prior programming or mathematical knowledge necessary for understanding.

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أسئلة العملاء & الإجابات

  • سؤال: كيف تتسوق Introduction to Machine Learning, fourth edition عبر الانترنت من يوباى?

    إجابه: من السهل التسوق في Introduction to Machine Learning, fourth edition عبر الإنترنت من يوباي. كل ما عليك فعله هو البحث عن المنتج واختيار طريقة الشحن الخاصة بك أثناء الدفع وسيتم توصيله الى عنوانك
  • سؤال: هل Introduction to Machine Learning, fourth edition متوفر للتسوق عبر الإنترنت في Bahrain؟

    إجابه: نعم ، في يوباي Bahrain هذا المنتج متاح لك للتسوق بسعر مناسب. Introduction to Machine Learning, fourth edition غير متوفر محليًا ولكن يمكنك الوثوق بنا بخدماتنا للشحن السريع.
  • سؤال: كم من الوقت يستغرق الحصول على المنتج بعد تقديم الطلب؟

    إجابه: يختلف وقت تسليم المنتج الذي طلبته حسب ما طلبته وطريقة الشحن التي اخترتها. يتم ذكر وقت التسليم المقدر أثناء عملية الدفع ، لذا كن مرتاحًا أثناء التسوق.

Intelligence & Semantics Editorial Review

The "Introduction to Machine Learning, fourth edition" by Ethem Alpaydin has elicited a mixed response from readers, reflecting the complexity of its content and audience. Many educators recommend it for its clear exposition of foundational concepts in machine learning, noting that it effectively bridges the gap between theoretical understanding and practical application. The author delves into core algorithms within supervised, unsupervised, and reinforcement learning, making it especially valuable for those who wish to grasp the principles behind the software implementations they may encounter in programming environments such as Python or R. Readers appreciate the straightforward writing style and the book's emphasis on theory, with several noting that it transforms from a technical-heavy approach to practical insights as the chapters progress. However, the reception is not overwhelmingly positive; some critics feel that the initial chapters are overly dense with mathematical content, which could be daunting for novices. This sentiment is echoed by a few reviewers who caution that the book may not be suitable for beginners lacking a strong background in statistics or mathematics. Moreover, a notable issue with some copies was identified, where a misprint resulted in missing content, compounding frustrations among users who had high expectations. Additionally, criticism has been leveled at the author’s writing style, with some reviewers finding it lacking in accessibility and explanatory depth, often assuming prior knowledge that not all readers may possess. In summary, while "Introduction to Machine Learning" is praised for its comprehensive and concise coverage of critical algorithms and theories, its reception is tempered by concerns over accessibility for beginners and writing style. **

مراجعات العملاء وتقييماتهم

4.7
98 تقييمات العملاء
  • 5 نجمة
    83%
  • 4 نجمة
    12%
  • 3 نجمة
    1%
  • 2 نجمة
    4%
  • 1 نجمة
    0%

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إيجابيات

  • Clear exposition of key algorithms and theories.
  • Bridges theory and practical application effectively.
  • Concise and well-structured content.
  • Revised sections that include modern machine learning topics like GANs and CNNs.

سلبيات

  • Somewhat technical and math-heavy, especially at the beginning.

تاريخ سعر المنتج

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