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Scientific Computing with Python: High-performance scientific computing with NumPy, SciPy, and pandas, 2nd Edition
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This updated edition of Scientific Computing with Python features new chapters on graphical user interfaces, efficient data processing, and parallel computing to help you perform mathematical and scientific computing efficiently using Python.
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Product Details
- Second edition of the book 'Scientific Computing with Python'
- Covers high-performance scientific computing using NumPy, SciPy, and pandas libraries
- Provides comprehensive knowledge on applying Python for scientific computing
- Updated edition that incorporates the latest advancements and techniques
- Includes practical examples and exercises to enhance understanding
- Suitable for individuals interested in scientific computing and Python programming
| Publisher | Packt Publishing |
| Publication date | July 23, 2021 |
| Edition | 2nd ed. |
| Language | English |
| Print length | 392 pages |
| ISBN-10 | 1838822321 |
| ISBN-13 | 978-1838822323 |
| Item Weight | 1.48 pounds (670 grams) |
| Dimensions | 7.5 x 0.89 x 9.25 inches (19.1 x 2.3 x 23.5 cm) |
Who Should Buy?
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Data Scientists
Ideal for data scientists looking to leverage Python libraries for data analysis and scientific computing.
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Researchers
Beneficial for researchers needing efficient solutions for complex calculations and data manipulation in scientific studies.
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Students
Great for students pursuing coursework in data science, scientific computing, or Python programming.
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Beginners in Python
Not suited for absolute beginners as it assumes prior knowledge of programming and Python.
Product Description
Scientific Computing with Python: High-performance scientific computing with NumPy, SciPy, and pandas, 2nd Edition
Customer Questions & Answers
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Question:
What key topics are covered in 'Scientific Computing with Python'?
Answer: This book thoroughly explores high-performance scientific computing utilizing Python, focusing on libraries like NumPy, SciPy, and pandas. You'll gain insights into numerical methods, data analysis techniques, and optimization strategies. Each chapter includes practical examples, making complex concepts more understandable and applicable, especially for researchers and engineers who require efficient computational tools in their work. -
Question:
Who is the target audience for this book?
Answer: The target audience includes students, researchers, and professionals who utilize Python for scientific applications. If you are involved in areas such as data science, machine learning, or computational physics, this book serves as an excellent resource. It effectively bridges the gap between theoretical knowledge and practical application, ensuring readers can implement concepts in real-world scenarios. -
Question:
How does this second edition differ from the first edition?
Answer: The second edition of 'Scientific Computing with Python' includes updated content that reflects the latest advancements in Python libraries and scientific computing techniques. It incorporates more in-depth discussions on new features in NumPy, SciPy, and pandas, plus additional examples and exercises to reinforce learning. This makes it more relevant for today’s practitioners looking to leverage the latest tools in their scientific computations. -
Question:
What prior knowledge is required to understand this book?
Answer: Readers should have a basic understanding of Python programming and familiarity with fundamental concepts in mathematics and statistics. The book assumes you can code simple scripts in Python, which will enable you to tackle the programming examples and exercises effectively. This foundation will ensure you can make the most of the advanced techniques presented throughout the chapters. -
Question:
Are there any practical applications mentioned in the book?
Answer: Yes, 'Scientific Computing with Python' includes numerous practical applications that showcase how to use the discussed libraries in real-world scientific problems. For example, you might analyze large datasets, solve differential equations, or optimize functions relevant to your field. These examples not only clarify the concepts but also inspire readers to explore creative applications in their own work. -
Question:
What additional resources are offered alongside the book?
Answer: The book typically offers supplementary resources such as code snippets, datasets, and additional exercises through a companion website or linked repositories. These resources enhance your learning experience, allowing for hands-on practice with the concepts discussed. Engaging with these materials can solidify your understanding and improve your computational skills effectively. -
Question:
Is this book suitable for beginners in scientific computing?
Answer: While the book contains some advanced topics, it is designed with a gradual learning curve that makes it accessible to beginners in scientific computing. The introductory chapters lay a solid groundwork in Python and the core libraries, allowing newcomers to build their skills progressively. With dedication and practice, beginners can gain proficiency and confidence in using Python for scientific tasks. -
Question:
Can this book be used for self-study?
Answer: Absolutely! 'Scientific Computing with Python' is structured to facilitate self-study, with clear explanations and practical examples that promote independent learning. Each chapter includes exercises that reinforce the material, making it ideal for self-paced learners looking to enhance their skills. Utilizing the book alongside supplementary online resources can greatly enrich your learning journey. -
Question:
What are some of the advanced topics included in the book?
Answer: Some advanced topics featured in 'Scientific Computing with Python' include optimization algorithms, machine learning techniques, and computational statistics. Each section presents complex concepts with clarity, supported by practical examples demonstrating how to implement these advanced techniques using NumPy, SciPy, and pandas. This comprehensive approach equips readers with the necessary tools to tackle demanding scientific computations. -
Question:
Where can I buy 'Scientific Computing with Python: High-performance scientific computing with NumPy, SciPy, and pandas, 2nd Edition'?
Answer: In Austria, you can purchase 'Scientific Computing with Python: High-performance scientific computing with NumPy, SciPy, and pandas, 2nd Edition' through Ubuy. Ubuy offers a reliable platform for obtaining this book, ensuring you have access to the latest edition and additional features that enhance your scientific computing journey.
Data Modeling & Design Editorial Review
The "Scientific Computing with Python" book is an excellent resource for learning the basics of scientific programming using Python, with plenty of examples to guide readers. It provides a broad and easy-to-understand introduction to the topic, making it highly recommended for anyone interested in building their intuition for problem solving using Python. That said, the book may be a bit too "light" for more experienced practitioners, but it could still be a quick read or refresher. This book could have been more useful if it had a comprehensive index and a handy appendix of basic commands for quick reference. Overall, the book is still an excellent resource for those looking to learn the fundamentals of scientific computing with Python.
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Pros
- Excellent resource for learning basics of scientific programming with Python
- Broad and easy-to-understand introduction to the topic
- Helpful examples throughout
Cons
- Minimal and useless index
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Features & Benefits
- New chapters included on graphical user interfaces, efficient data processing, and parallel computing
- Learn through examples and code snippets in scientific computing
- Explore Python alongside mathematical applications
- Learn to use pandas for basic data analysis
- Discover numerical computation modules such as NumPy and SciPy
- Understand task automation and implementing mathematical algorithms in scientific computing
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