Название: Monte Carlo Simulations Using Microsoft EXCEL Автор: Shinil Cho Издательство: Springer Год: 2023 Страниц: 164 Язык: английский Формат: pdf (true) Размер: 12.6 MB
This book offers step-by-step descriptions of various random systems and explores the world of computer simulations. In addition, this book offers a working introduction to those who want to learn how to create and run Monte Carlo simulations. Monte Carlo simulation has been a powerful computational tool for physics models, and when combined with the programming language Excel, this book is a valuable resource for readers who wish to acquire knowledge that can be applied to more complex systems. Visualization of the simulation results via the Visual Basic built in Microsoft EXCEL is presented as the first step towards the subject. Prior experience with the Excel add-in VBA is kept to a minimum. In addition, a chapter on quantum optimization simulation utilizing Python is added to explore the quantum computation. Readers will gain a fundamental knowledge and techniques of simulation physics, which can be extended to STEM projects and other research projects.
The programming language used in this book is the built-in Visual Basic for Application (VBA) of EXCEL. The language is simple for numerical computation and can re-write legacy BASIC programs found in other renowned books. EXCEL’s data analysis and chart capabilities are utilized for easier data analysis so that simulation codes are slim to show the essential part of the Monte Carlo method. The VBA codes in this book are not written in an elegant manner but the author attempts to present more descriptive codes for further applications by the readers.
Traditionally there always a discussion of how to generate random numbers before explaining simulation algorithms. While it is indeed critical to use “true” random numbers for random samplings, we conveniently use the EXCEL’s “quasi-random” number generator, RND( ). There is no discussion of the random number generator, nor estimation of accuracy of the simulation results. As you learn more, these issues on simulations should be considered for better results for research, referring to more advanced books.
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