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    Monte Carlo Integration with MATLAB and Simulink

    AvArthur A. Giordano

    Inbunden, Engelska, 2026

    1 619 kr

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    Beskrivning

    Presents detailed guidance on Monte Carlo integration methods for complex applications Monte Carlo integration has become an indispensable computational tool across science, engineering, mathematics, and economics, offering effective solutions where traditional numerical integration methods fall short. Monte Carlo Integration with MATLAB and Simulink provides both a structured introduction to advanced integration techniques and a practical guide to applying them in real-world contexts. Author Arthur A. Giordano emphasizes the natural progression from traditional methods such as the use of MATLAB integral to Monte Carlo simulation-based approaches, highlighting the growing importance of random variable–driven computations in modern research and engineering applications. Covering topics from accept-rejection sampling and importance sampling to advanced algorithms such as Metropolis-Hastings, Gibbs Sampling, Slice, Hamiltonian Monte Carlo, and Sequential Monte Carlo (Particle Filtering), the book equips readers with the knowledge to handle both tractable and intractable integration problems. Extensive MATLAB examples are paired with detailed explanations, while dedicated Simulink models extend the scope of applications to robotics, control systems, neural networks, cosmology, and more. By integrating step-by-step examples, code snippets, and exploratory exercises, the book fosters an interactive learning process that encourages readers to replicate, modify, and expand on the provided material. Combining theoretical background with extensive computational demonstrations, Monte Carlo Integration with MATLAB and Simulink: Covers both deterministic and simulation-based integration methods with increasing depth and complexityIntroduces advanced Monte Carlo sampling algorithms, including Gibbs Sampling and Sequential Monte Carlo (Particle Filtering)Features over a dozen fully developed MATLAB examples with accompanying program codeProvides detailed Simulink models for robotics, control systems, and scientific applicationsIncludes problem sets with solutions available on a companion websiteHighlights the transition from classical integration to simulation methods for random processesIncorporating classical integration techniques and cutting-edge simulation methods, Monte Carlo Integration with MATLAB and Simulink is a valuable resource for advanced undergraduate and graduate students in applied mathematics, engineering, and computational sciences, as well as scientists, engineers, and researchers applying Monte Carlo integration in fields ranging from signal processing to robotics.

    Produktinformation

    • Utgivningsdatum:2026-04-01
    • Mått:145 x 229 x 28 mm
    • Vikt:748 g
    • Format:Inbunden
    • Språk:Engelska
    • Antal sidor:384
    • Förlag:John Wiley & Sons Inc
    • ISBN:9781394407040

    Utforska kategorier

    • Beräkning och matematisk analys inom Naturvetenskap och teknik
    • Matematisk statistik inom Naturvetenskap och teknik
    • Systemvetenskap och AI inom Data och IT

    Mer om författaren

    Arthur A. Giordano, PhD, earned his BS and MS in Electrical Engineering from Northeastern University and his doctorate from the University of Pennsylvania. With decades of experience in military and commercial communications, he has held leadership roles at GTE, Verizon Laboratories, and CNR, and was a founder of AG Consulting, LLC. He has published numerous technical articles, holds multiple patents, and co-authored two widely referenced texts: Modeling of Digital Communications Using Simulink and Detection and Estimation Theory. Dr. Giordano is a Life Senior Member of IEEE.

    Innehållsförteckning

    • Preface xiiiAcknowledgments xxiAbout the Software xxiiiAbbreviations and Acronyms xxvList of MATLAB and Simulink Programs xxviiAbout the Companion Website xxxi1 Monte Carlo and Numerical Integration Methods 12 Numerical Integration 33 MATLAB Integral Programs 114 Monte Carlo Integration 215 Monte Carlo Integration: A Binary Choice 396 Monte Carlo Integration of a Normal Probability Density Function 577 Integration Using Importance Sampling 818 Further Methods of Monte Carlo Sampling 979 Metropolis–Hastings (MH) and Markov Chain Monte Carlo (MCMC) 12510 Gibbs Sampling 17911 Slice Sampling 20712 Hamiltonian Monte Carlo Sampling 21913 Sequential Monte Carlo or Particle Filtering 23714 Numerical Integration via Simulink 25715 Summary of Monte Carlo Integration Methods 309Appendix A Summary of Legendre–Gauss Quadrature Integration Method 313Appendix B Computation of Posteriori pdf for Gibbs Sampling 321Appendix C Hamiltonian Equations of Motion 331Appendix D MATLAB Notes 337Index 343