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Hands-On Machine Learning with scikit-learn and Scientific Python Toolkits: A practical guide to implementing supervised and unsupervised machine
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COP 252272
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Detalles de producto
| Publisher | Packt Publishing |
| Publication date | July 24, 2020 |
| Language | English |
| Print length | 384 pages |
| ISBN-10 | 1838826041 |
| ISBN-13 | 978-1838826048 |
| Item Weight | 1.45 pounds (660 grams) |
| Dimensions | 7.5 x 0.87 x 9.25 inches (19.1 x 2.2 x 23.5 cm) |
| Country of Origin | This item will be imported from US |
| Date First Available | April 03, 2021 |
| What is in the box | Hands-On Machine Learning with... For more details, please check description/product details |
Who Should Buy?
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Beginner Data Scientists
Ideal for those starting in data science who want practical guidance on machine learning with Python.
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Intermediate Practitioners
Great for users with basic knowledge looking to deepen their understanding of machine learning algorithms.
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Academic Researchers
Useful for researchers needing a solid resource for implementing machine learning techniques in their projects.
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Advanced Experts
Not suitable for highly experienced practitioners seeking advanced theoretical insights or breakthroughs in machine learning.
DESCRIPCIÓN DEL PRODUCTO
Hands-On Machine Learning with scikit-learn and Scientific Python Toolkits: A practical guide to implementing supervised and unsupervised machine learning algorithms in Python
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Machine Theory Editorial Review
**Editorial Review** "Hands-On Machine Learning with scikit-learn and Scientific Python Toolkits" serves as a commendable introduction to machine learning for aspiring data scientists and any curious learner eager to explore the intricacies of developing machine learning algorithms. The book effectively demystifies complex concepts by presenting them in an accessible manner, making it particularly beneficial for readers without a strong mathematics background. It details the implementation of various algorithms using Python and the widely-used scikit-learn library, providing the reader with real-life applications and code examples that can be leveraged for building more significant applications. The content is practically oriented, covering both supervised and unsupervised learning, with a focus on how to analyze and interpret imperfect data. Readers are guided through standard algorithms, such as decision trees, KNN classification, and Naive Bayes, implemented with familiar datasets like the Iris dataset and Boston housing prices. The author’s intent to empower readers with concrete knowledge is evident as they progress toward developing independent machine learning applications. However, there are criticisms regarding the organization and depth of content. Certain foundational topics were introduced post-algorithm discussions, which may hinder the flow for some learners. While the book does provide a fair overview of key concepts, it cannot be relied upon as an exhaustive resource to completely master the subject; more advanced learners or those looking for comprehensive theoretical insights may find it lacking. The absence of a glossary is also noted as a potential inconvenience for quick reference to important terms. Ultimately, this book is recommended for beginners and serves as a stepping stone in the journey to more advanced machine learning studies. While it has its limitations, it offers a solid foundation for those looking to delve into machine learning with Python and scikit-learn. **Pros and Cons** **
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ventajas
- Easy-to-understand introduction to machine learning concepts.
- Practical implementation focus using the scikit-learn library.
- Numerous code examples and real-life applications for hands-on learning.
- Suitable for readers without a strong math or programming background.
Contras
- Lacks depth in theoretical discussions and coverage of certain algorithms.
Product Price History
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COP 252272
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