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Python Machine Learning By Example: Build intelligent systems using Python, TensorFlow 2, PyTorch, and scikit-learn, 3rd Edition
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Python Machine Learning By Example, Third Edition serves as a comprehensive gateway into the world of machine learning (ML) and provides actionable insights on the key fundamentals of ML with Python programming.
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Detalji o proizvodu
- Comprehensive guide to practical machine learning with Python, TensorFlow 2, PyTorch, and scikit-learn
- Exploration of cutting-edge content on deep learning and reinforcement learning
- Use of Python libraries such as TensorFlow, PyTorch, and scikit-learn to track machine learning projects
- New chapters covering topics like movie recommendation, face recognition, stock price prediction, and more
- Focus on important concepts in ML and data science using Python
- Target audience includes machine learning enthusiasts, data analysts, and data engineers with prior knowledge of Python coding
| Publisher | Packt Publishing |
| Publication date | October 30, 2020 |
| Edition | 3rd |
| Language | English |
| Print length | 526 pages |
| ISBN-10 | 1800209711 |
| ISBN-13 | 978-1800209718 |
| Item Weight | 1.97 pounds (890 grams) |
| Dimensions | 7.5 x 1.19 x 9.25 inches (19.1 x 3 x 23.5 cm) |
Who Should Buy?
-
Beginner Data Scientists
Ideal for individuals new to machine learning seeking practical examples and hands-on experience in Python.
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Intermediate Programmers
Suited for programmers familiar with Python looking to expand their skills into machine learning concepts and applications.
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Self-Learners
Beneficial for self-motivated learners wanting to understand machine learning through real-world projects using popular libraries.
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Absolute Beginners
Not ideal for those with no programming background, as it requires prior knowledge of Python.
OPIS PROIZVODA
Python Machine Learning By Example: Build intelligent systems using Python, TensorFlow 2, PyTorch, and scikit-learn, 3rd Edition
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Natural Language Processing Editorial Review
The "Python Machine Learning By Example" book is well-liked by the readership. However, some have noted issues with the typesetting and error-filled code, but also mention they were able to fix some of the issues encountered. The book offers general descriptions, but may not provide a deep dive into some of the topics covered.
Customer Reviews & Ratings
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Pros
- Comprehensive coverage of Python Machine Learning, TensorFlow 2, PyTorch, and scikit-learn
- Clear and easy-to-understand explanations of concepts
Protiv
- Poor typesetting in black and white
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Značajke i prednosti
- Comprehensive guide to latest developments of practical machine learning with Python and upgrade understanding of ML algorithms and techniques
- Explore advanced content reflecting deep and reinforcement learning developments
- Implement ML algorithms from scratch in Python
- Gain understanding of mechanics of ML techniques and important concepts in ML and data science
- Includes realistic examples that provide insight in areas such as exploratory data analysis, feature engineering, classification, regression, clustering, and NLP
- Intended audience - machine learning enthusiast, data analyst, or data engineer passionate about machine learning assignments with prior knowledge of Python programming
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