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Master Machine Learning with scikit-learn: A Practical Guide to Building Better Models with Python
89% of respondents would recommend this to a friend
MYR 141
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If you think that Machine Learning is too complex for you to learn, I cannot recommend this book enough. It will give you the confidence you need, along with the knowledge you want.
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Maklumat produk
- This is a practical guide to help you transform from Machine Learning novice to skilled Machine Learning practitioner.Throughout the book, you’ll learn the best practices for proper Machine Learning and how to apply those practices to your own Machine Learning problems. By the end of this book, you’ll be more confident when tackling new Machine Learning problems because you’ll understand what steps you need to take, why you need to take them, and how to correctly execute those steps using scikit-learn. You’ll know what problems you might run into, and you’ll know exactly how to solve them. Because you’re learning a better way to work in scikit-learn, your code will be easier to write and to read, and you’ll get better Machine Learning results faster than before!If you think that Machine Learning is too complex for you to learn, I cannot recommend this book enough. It will give you the confidence you need, along with the knowledge you want.- Reuven Lerner, Python trainerBy far the best book I've read on scikit-learn. The later chapters, in particular, helped me significantly deepen my understanding and improve my use of the library.- Patrick Ryan, Software EngineerExceptionally well-structured and easy to grasp.- Marco Peters, Business Intelligence AnalystKevin Markham is the founder of Data School, an online school for learning Data Science with Python. He has been teaching Machine Learning in the classroom and online for more than 10 years, and is passionate about teaching people who are new to the field. He has a degree in Computer Engineering from Vanderbilt University and lives in Asheville, North Carolina.Topics covered:Review of the basic Machine Learning workflowEncoding categorical featuresEncoding text dataHandling missing valuesPreparing complex datasetsCreating an efficient workflow for preprocessing and model buildingTuning your workflow for maximum performanceAvoiding data leakageProper model evaluationAutomatic feature selectionFeature standardizationFeature engineering using custom transformersLinear and non-linear modelsModel ensemblingModel persistenceHandling high-cardinality categorical featuresHandling class imbalance
| Publisher | Independently published |
| Publication date | March 4, 2026 |
| Language | English |
| Print length | 315 pages |
| ISBN-13 | 979-8299179460 |
| Item Weight | 1.2 pounds (540 grams) |
| Dimensions | 7.5 x 0.71 x 9.25 inches (19.1 x 1.8 x 23.5 cm) |
Who Should Buy?
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Aspiring Data Scientists
Perfect for beginners aiming to develop practical machine learning skills using the popular scikit-learn library in Python.
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Intermediate Practitioners
Ideal for those with basic knowledge of machine learning who want to enhance their model-building techniques and understanding.
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Python Enthusiasts
Great for developers and programmers looking to integrate machine learning solutions into their Python applications and projects.
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Complete Beginners
Users without prior programming or machine learning experience may struggle with the concepts and practical implementations in this book.
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Expert Systems Editorial Review
**Editorial Review of *Master Machine Learning with scikit-learn: A Practical Guide to Building Better Models with Python*** *Master Machine Learning with scikit-learn* by Kevin Markham emerges as a leading resource for individuals venturing into the realm of machine learning, balancing both educational rigor and practical application. Markham's adeptness as an educator is paramount, evident in the clarity and efficiency with which he presents complex concepts. The book acts as a companion to his acclaimed online courses, distilling intricate topics into concise, accessible chapters rich in practical examples and code-driven explanations. A standout attribute is the inclusion of a Q&A section at the end of each chapter, which addresses common queries and provides deeper insights into design choices and best practices. This feature enhances the reader's understanding and supports the development of robust models capable of thriving in real-world applications. While not delving deeply into theoretical aspects or the mathematical underpinnings of algorithms, the book successfully fulfills its role as a practical guide. It is particularly beneficial for those new to machine learning as well as more experienced practitioners looking to refine their skills. Moreover, readers have lauded the book's attention to detail in presentation, from its formatting to its visual appeal, enriching the overall learning experience. The text not only introduces foundational concepts but also ventures into advanced topics often overlooked by other resources, such as data leakage and feature engineering. Markham's approach makes the book an invaluable addition to any data science library, offering exceptional value for its price—typically less than $20. This guide stands as a testament to effective technical communication, making the daunting world of machine learning accessible and engaging. **
Customer Reviews & Ratings
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5 bintang
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Ulas Produk Ini
Kongsikan pandangan anda dengan pelanggan lain
Kebaikan
- Clear and concise presentation of complex concepts
- Packed with practical examples and code-driven explanations
- Q&A sections provide valuable insights and best practices
- Covers both foundational and advanced topics
- Excellent resource for both beginners and experienced practitioners
- High-quality layout and formatting enhance readability
- Exceptional value for money
Keburukan
- Does not focus on theoretical aspects or mathematical foundations of algorithms
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MYR 141
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Ciri & Faedah
- Transform from Machine Learning novice to practitioner.
- Learn best practices for applying Machine Learning effectively.
- Gain confidence to tackle new problems with a systematic approach.
- Easier to write and read code, resulting in improved outcomes.
- Authored by an experienced instructor passionate about teaching.
- Well-structured content makes complex topics easy to grasp.
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