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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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Python Machine Learning, Third Edition is a comprehensive guide to machine learning and deep learning with Python. It acts as both a step-by-step tutorial, and a reference you'll keep coming back to as you build your machine learning systems.
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Produktdetaljer
- Third edition of the bestselling Python machine learning book
- Clear and intuitive explanations of machine learning techniques
- Updated and expanded for TensorFlow 2, GANs, and reinforcement learning
- Covers scikit-learn, TensorFlow, and PyTorch frameworks
- Includes practical examples for image classification, sentiment analysis, and more
- Suitable for beginners and intermediate readers
| Publisher | Packt Publishing |
| Publication date | December 12, 2019 |
| Edition | 3rd ed. |
| Language | English |
| Print length | 770 pages |
| ISBN-10 | 1789955750 |
| ISBN-13 | 978-1789955750 |
| Item Weight | 2.87 pounds (1.3 kg) |
| Dimensions | 7.5 x 1.74 x 9.25 inches (19.1 x 4.4 x 23.5 cm) |
Hvem bør købe?
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Beginner Data Scientists
This book provides foundational knowledge needed to start a career in data science and machine learning.
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Developers Interested in AI
Software engineers looking to expand into artificial intelligence will benefit from practical insights and examples.
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Students of Machine Learning
Undergraduate or graduate students can effectively use this resource to supplement their coursework and projects.
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Advanced Machine Learners
Experienced practitioners may find the content too basic and not challenging enough for their skill level.
Produktbeskrivelse
Kundespørgsmål og svar
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spørgsmål:
What topics are covered in Python Machine Learning, 3rd Edition?
svar: This edition of Python Machine Learning explores essential topics like machine learning algorithms, deep learning methods, and practical implementations using Python libraries such as scikit-learn and TensorFlow 2. It covers supervised and unsupervised learning techniques, model evaluation, neural networks, and hyperparameter tuning. Readers will gain a solid understanding of how to apply these concepts in real-world scenarios, making it ideal for both novices and experienced practitioners in the field of data science. -
spørgsmål:
Who is the target audience for Python Machine Learning, 3rd Edition?
svar: The book targets a diverse range of readers, including beginners looking to break into machine learning, students studying data science, and professionals seeking to deepen their knowledge. It employs a practical approach with hands-on projects and examples, making complex concepts accessible. Whether you're a software developer looking to incorporate machine learning or a researcher needing to implement advanced algorithms, this book serves as a valuable resource. -
spørgsmål:
What programming knowledge is required to benefit from this book?
svar: To fully engage with this book, readers should have a fundamental understanding of Python programming. Familiarity with concepts like data structures, functions, and basic libraries such as NumPy and pandas will significantly enhance the learning experience. While the book aims to teach machine learning concepts, prior programming knowledge helps in effectively applying the techniques and examples discussed throughout the chapters. -
spørgsmål:
How does this book differ from previous editions?
svar: The third edition of Python Machine Learning introduces updated content reflecting advancements in machine learning technologies and techniques. New chapters on deep learning with TensorFlow 2, enhancements in practical examples, and clearer guidelines for implementing algorithms make it distinct. Additionally, it includes more case studies and insights into current industry practices, providing readers with a contemporary perspective on machine learning applications. -
spørgsmål:
Are there practical exercises available in this book?
svar: Yes, this book includes a variety of practical exercises that allow readers to apply the theoretical concepts learned. Each chapter features coding examples and real-world projects that guide you through implementing machine learning models from scratch. This hands-on approach helps solidify understanding and builds confidence in applying machine learning techniques to various datasets and scenarios. -
spørgsmål:
What tools and libraries are utilized in this edition?
svar: This edition primarily utilizes popular Python libraries such as scikit-learn for traditional machine learning tasks and TensorFlow 2 for deep learning applications. It guides readers on how to set up their development environment and provides code snippets that facilitate practical implementation. Mastering these tools is crucial for developing machine learning applications, making this book a great starting point for aspiring data scientists. -
spørgsmål:
Are there any prerequisites for reading this book?
svar: While there are no strict prerequisites, a basic understanding of programming concepts, especially in Python, is beneficial. Readers new to machine learning may also benefit from having prior knowledge of statistics and linear algebra, as these subjects provide a foundation for understanding various algorithms and techniques discussed. Overall, the book is designed to cater to a wide audience, accommodating both beginners and experienced readers. -
spørgsmål:
Can you provide examples of projects or case studies in the book?
svar: Certainly! The book features several practical projects, including building a recommendation system, predicting house prices, and classifying images using convolutional neural networks. These case studies not only illustrate the implementation of various machine learning algorithms but also demonstrate their real-life applicability. By working through these projects, readers can enhance their skills and apply machine learning techniques to solve actual business problems. -
spørgsmål:
What is the importance of hyperparameter tuning in the book?
svar: Hyperparameter tuning is crucial as it significantly affects the performance of machine learning models. In the book, readers learn about various methods like grid search and random search to optimize model parameters effectively. Understanding how to fine-tune these hyperparameters enables users to improve model accuracy and efficiency, making it essential for anyone looking to achieve high-quality results in their machine learning projects. -
spørgsmål:
Where can I buy Python Machine Learning: Machine Learning and Deep Learning with Python, scikit-learn, and TensorFlow 2, 3rd Edition?
svar: You can purchase Python Machine Learning: Machine Learning and Deep Learning with Python, scikit-learn, and TensorFlow 2, 3rd Edition from Ubuy. Ubuy offers a variety of purchasing options and is a reliable platform to acquire the book in Faroe Islands, ensuring you get the latest edition you need to enhance your knowledge in machine learning.
Neural Networks Editorial Review
Raschka and Mirjalili's "Python Machine Learning" is a helpful and informative read, especially for those new to the world of data science. It includes clear explanations and illustrations with coding that make it a great reference material for machine learning practitioners. The book provides a good balance between being hands-on with the code and explaining the math. However, some customers had complaints about the book's physical condition, with some stating that the cover was dirty and others noticing the ink smudges in the pages. One reviewer also mentioned that they wish they had known beforehand that the book's images were in black and white, rendering some graphs useless. Overall, this book is heavily recommended for those who have prior experience in programming with Python and want to dive into scikit-learn. However, the authors are encouraged to incorporate PyTorch and BERT models in their next edition.
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Fordele
- Clear explanations and illustrations with coding.
- Good for reference material for machine learning practitioners.
- Good balance between hands-on code and math explanation.
- Helpful for those new to data science.
Ulemper
- Complaints about book physical condition (dirty cover, ink smudges).
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Egenskaber og fordele
- Comprehensive guide to machine learning and deep learning with Python
- Covers all the essential machine learning techniques in depth
- Introduces readers to TensorFlow 2.0 and latest additions to scikit-learn
- Explores cutting-edge reinforcement learning techniques based on deep learning
- Ideal for developers and data scientists who want to create practical machine learning and deep learning code
- Teaches principles behind machine learning, allowing you to build models and applications for yourself
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