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Python Machine Learning: Machine Learning and Deep Learning with Python, scikit-learn, and TensorFlow 2, 3rd Edition
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Master the frameworks, models, and techniques that enable machines to 'learn' from data
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Productdetails
| Publisher | Packt Publishing |
| Publication date | December 12, 2019 |
| Edition | 3rd |
| Language | English |
| File size | 56.2 MB |
| Screen Reader | Supported |
| Enhanced typesetting | Enabled |
| X-Ray | Not Enabled |
| Word Wise | Not Enabled |
| Print length | 3001 pages |
| ISBN-13 | 978-1789958294 |
| Page Flip | Enabled |
| Item Weight | 1 lbs (450 grams) |
Voor wie is dit geschikt?
-
Aspiring Data Scientists
Ideal for beginners looking to understand machine learning concepts through practical examples using Python and popular libraries.
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Developers Seeking Skills
Software developers wanting to integrate machine learning into applications can learn necessary techniques and frameworks from this guide.
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AI/ML Enthusiasts
Those passionate about artificial intelligence and machine learning will find advanced concepts explained concisely with hands-on projects.
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Complete Novices
Individuals without any programming experience may struggle with the technical content and coding requirements of the book.
PRODUCTBESCHRIJVING
Python Machine Learning: Machine Learning and Deep Learning with Python, scikit-learn, and TensorFlow 2, 3rd Edition
Vragen en antwoorden van klanten
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vraag:
What topics are covered in Python Machine Learning, 3rd Edition?
antwoord: The 3rd Edition focuses on comprehensive coverage of machine learning and deep learning concepts using Python, scikit-learn, and TensorFlow 2. It includes essential topics like supervised and unsupervised learning, neural networks, model evaluation, and advanced techniques like ensemble learning. The book also provides practical use cases, allowing you to implement algorithms and understand real-world applications. This knowledge is crucial for anyone looking to enter data science or enhance their AI skills. -
vraag:
Who is the target audience for this book?
antwoord: This book is aimed at both beginner and intermediate readers interested in machine learning. Whether you're a student, data analyst, or developer, the clear explanations and practical examples make the material accessible. Even seasoned professionals can benefit from the updates in this edition, particularly if looking to refresh their knowledge with the latest tools like TensorFlow 2. The book serves as both a learning guide and a reference resource in the field of data science. -
vraag:
What programming experience do I need to understand this book?
antwoord: A basic understanding of Python programming is important to fully grasp the concepts in this book. Familiarity with libraries such as NumPy and pandas is beneficial, as these are frequently used throughout the text. The author provides detailed examples and code snippets, making it easier for readers to follow along and implement the concepts discussed. With hands-on exercises, even those new to programming can progress and apply machine learning techniques effectively. -
vraag:
Is there a focus on practical applications in this edition?
antwoord: Yes, the 3rd Edition emphasizes hands-on programming and practical applications of machine learning concepts. Each chapter includes coding examples and exercises that encourage readers to implement what they learn. Real-world use cases, such as image recognition, natural language processing, and recommendation systems, provide relatable scenarios for understanding how machine learning can be applied in various industries. This practical approach reinforces learning and prepares readers for real challenges. -
vraag:
How does this edition differ from previous ones?
antwoord: This edition has been thoroughly updated to include the latest advancements in machine learning and deep learning. Key differences include expanded content on TensorFlow 2, new chapters on advanced topics, and improved clarity in explanations. The author has also refined coding examples to better fit current standards and best practices in programming. These updates ensure that readers have access to the most relevant and effective techniques in the rapidly evolving field of machine learning. -
vraag:
Are there any supplementary materials or resources available?
antwoord: Yes, along with the book, readers can access supplementary materials such as code repositories and additional datasets provided by the author. These resources enable hands-on practice and deeper exploration of the topics covered in the book. They serve as tools for readers to test their coding skills and experiment with machine learning algorithms, enhancing their learning experience and understanding of the methodologies discussed in the text. -
vraag:
Can this book help with interview preparation in data science?
antwoord: Absolutely! This book equips readers with a strong foundation in machine learning concepts and practical skills needed in data science roles. The coverage of various algorithms, evaluation methods, and real-world applications prepares readers to tackle interview questions effectively. Familiarity with the coding examples and case studies presented enables candidates to discuss their knowledge confidently and demonstrates their ability to apply machine learning methods in prospective job situations. -
vraag:
What are the prerequisites for deep learning content in this book?
antwoord: To fully benefit from the deep learning sections, readers should have a solid understanding of machine learning basics and neural network architectures. Familiarity with TensorFlow and Keras will also help in implementing the deep learning models covered. The book incrementally builds on concepts, so even those new to deep learning can follow along with foundational knowledge. Engaging with the provided code and examples will deepen understanding and facilitate the transition to more advanced topics. -
vraag:
Where can I buy Python Machine Learning: Machine Learning and Deep Learning with Python, scikit-learn, and TensorFlow 2, 3rd Edition in Aruba?
antwoord: You can buy Python Machine Learning: Machine Learning and Deep Learning with Python, scikit-learn, and TensorFlow 2, 3rd Edition on Ubuy in Aruba. Ubuy offers a convenient platform to purchase this Kindle edition and provides access to relevant e-commerce features, ensuring you have the best shopping experience for your educational resources.
Python Editorial Review
Python Machine Learning: Machine Learning and Deep Learning with Python, scikit-learn, and TensorFlow 2, 3rd Edition is a comprehensive guide published by Packt Publishing that spans 770 pages. The book delves into vital concepts of machine learning, offering practical examples and theoretical fundamentals that enrich understanding, particularly in Python. Reviewers appreciate the structured approach and the author's method of walking through algorithms using Python and NumPy, providing a hands-on learning experience. However, some have noted issues with printing quality, although replacements have resolved this. Additionally, previous sections on deep learning enhance the book's value, making it suitable for those familiar with Python looking to expand their knowledge in scikit-learn and TensorFlow. The book contains discernible gaps in connecting deep learning concepts seamlessly, prompting readers to refer to external documentation for clarity.
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- Comprehensive coverage of machine learning topics
- Practical examples that enhance understanding
- Well-structured content for easy learning
- Thorough explanations of algorithms and math
- Enhanced learning with supplementary PDF notes
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- Printing quality may vary, but replacements are provided
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Kenmerken en voordelen
- Comprehensive guide to machine learning and deep learning with Python
- Updated and expanded to cover TensorFlow 2, GANs, and reinforcement learning
- Includes clear explanations, visualizations, and working examples
- Teaches the principles behind machine learning, enabling the building of custom models and applications
- Ideal resource for Python developers and data scientists looking to create practical machine learning and deep learning code
- Covers essential techniques such as image classification, sentiment analysis, neural networks, GANs, and regression analysis
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