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Computational Physics: Problem Solving with Python
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Fourth edition of a classic on computational physics with new chapters on data science, machine learning and general relativity.
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تفاصيل المنتج
- The classic in the field for more than 25 years, now with increased emphasis on data science and new chapters on quantum computing, machine learning (AI), and general relativityComputational physics combines physics, applied mathematics, and computer science in a cutting-edge multidisciplinary approach to solving realistic physical problems. It has become integral to modern physics research because of its capacity to bridge the gap between mathematical theory and real-world system behavior. Computational Physics provides the reader with the essential knowledge to understand computational tools and mathematical methods well enough to be successful. Its philosophy is rooted in “learning by doing”, assisted by many sample programs in the popular Python programming language. The first third of the book lays the fundamentals of scientific computing, including programming basics, stable algorithms for differentiation and integration, and matrix computing. The latter two-thirds of the textbook cover more advanced topics such linear and nonlinear differential equations, chaos and fractals, Fourier analysis, nonlinear dynamics, and finite difference and finite elements methods. A particular focus in on the applications of these methods for solving realistic physical problems. Readers of the fourth edition of Computational Physics will also find: An exceptionally broad range of topics, from simple matrix manipulations to intricate computations in nonlinear dynamicsA whole suite of supplementary material: Python programs, Jupyter notebooks and videosComputational Physics is ideal for students in physics, engineering, materials science, and any subjects drawing on applied physics.
| Publisher | Wiley-VCH |
| Publication date | April 2, 2024 |
| Edition | 4th |
| Language | English |
| Print length | 592 pages |
| ISBN-10 | 3527414258 |
| ISBN-13 | 978-3527414253 |
| Item Weight | 2.41 pounds (1.09 kg) |
| Dimensions | 6.62 x 1.34 x 9.62 inches (16.8 x 3.4 x 24.4 cm) |
من يجب أن يشتري؟
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Physics Students
Ideal for undergraduate and graduate physics students seeking to enhance their computational skills using Python.
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Research Scientists
Useful for researchers needing practical problem-solving techniques in computational physics using Python programming.
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Educators
Great for educators looking to incorporate computational physics and Python coding into their curriculum effectively.
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Absolute Beginners
Not suitable for individuals with no prior programming experience or physics knowledge.
وصف المنتج
أسئلة العملاء & الإجابات
-
سؤال:
What is the primary focus of 'Computational Physics: Problem Solving With Python'?
إجابه: The primary focus of 'Computational Physics: Problem Solving With Python' is to teach readers how to apply computational techniques to solve complex physical problems using Python programming. This book bridges the gap between theoretical physics and practical application, showcasing real-world scenarios where computational methods are necessary. For instance, readers learn how to model systems, analyze data, and visualize results, which can be particularly beneficial in research, engineering, and academic settings. -
سؤال:
Who is the target audience for this book?
إجابه: 'Computational Physics: Problem Solving With Python' is aimed at physics students, educators, and professionals who are looking to enhance their computational skills. It's suitable for those who have a basic understanding of physics and programming. This book is particularly useful for graduate-level students or advanced undergraduates who want to integrate programming into their physics problem-solving toolkit, enhancing their analytical abilities in both academic and industry applications. -
سؤال:
What programming skills do you need before reading this book?
إجابه: Before delving into 'Computational Physics: Problem Solving With Python', it's beneficial to have a fundamental understanding of Python programming. Familiarity with basic programming concepts, such as loops, conditionals, and functions, will enhance your experience. While the book does introduce Python in the context of computational physics, prior exposure can streamline your learning process, enabling you to focus more on the physics problems rather than getting caught up in programming syntax. -
سؤال:
Can this book be used for self-study?
إجابه: Yes, 'Computational Physics: Problem Solving With Python' is designed for self-study and includes numerous exercises and examples that facilitate independent learning. Each chapter builds upon the previous ones, allowing readers to progressively deepen their understanding. This structure is ideal for self-learners who wish to master computational physics at their own pace while applying their knowledge through practical coding exercises. -
سؤال:
What are some practical applications of computational physics in this book?
إجابه: The book covers various practical applications of computational physics, including simulations of physical systems, numerical modeling, and data analysis. Readers will encounter scenarios such as simulating particle motion, solving differential equations, and analyzing experimental data. These skills are not only crucial for academic success but are also highly valued in fields like engineering, astrophysics, and data science, where problem-solving with computational tools is essential. -
سؤال:
Does the book include any code examples or projects?
إجابه: Yes, 'Computational Physics: Problem Solving With Python' is rich with code examples and hands-on projects that illustrate key concepts. Each chapter typically concludes with programming exercises that reinforce the material covered, encouraging readers to implement what they have learned. This approach is particularly beneficial for gaining practical experience and for developing a solid portfolio of computational projects that can be showcased in academic or professional environments. -
سؤال:
How is the book structured?
إجابه: The book is structured into chapters that progressively cover fundamental to advanced topics in computational physics. Each chapter typically starts with theoretical concepts, followed by Python coding examples, and then concludes with exercises for practice. This logical flow allows readers to first understand the physics principles, see how they are implemented in code, and finally, apply that knowledge. Such a structure is designed to reinforce both conceptual understanding and practical programming skills. -
سؤال:
What resources accompany this book?
إجابه: Alongside 'Computational Physics: Problem Solving With Python', readers can often find supplementary resources such as online repositories for code, access to additional exercises and datasets, and sometimes lecture notes. These resources enhance the learning experience by providing further opportunities to practice coding and apply computational methods to physics problems. Such materials are particularly useful for instructors incorporating the book into their curriculum or for self-learners seeking deeper engagement. -
سؤال:
Can this book help in preparing for physics competitions?
إجابه: Yes, 'Computational Physics: Problem Solving With Python' can be a valuable resource for preparing for physics competitions. The practical problem-solving approaches and computational techniques taught can help competitors tackle complex problems that may require innovative solutions. Participants can benefit from the exercises which often mirror the types of challenges faced in physics Olympiads or similar contests, providing a robust foundation in both theoretical understanding and practical application. -
سؤال:
Where can I buy 'Computational Physics: Problem Solving With Python' in Palestine?
إجابه: You can purchase 'Computational Physics: Problem Solving With Python' from Ubuy in Palestine. Ubuy is an online platform offering a vast selection of books and other products along with international shipping options. By choosing Ubuy, you can ensure a smooth shopping experience with reliable service.
Intelligence & Semantics Editorial Review
مراجعات العملاء وتقييماتهم
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5 نجمة
44%
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4 نجمة
19%
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3 نجمة
18%
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2 نجمة
0%
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1 نجمة
19%
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المميزات والفوائد
- Classic title in computational physics.
- New chapters added on data science and machine learning.
- Includes general relativity topics.
- Comprehensive supplementary materials included.
- Ideal for students and professionals alike.
- Stay updated with modern developments in the field.
ضمان Ubuy
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