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Paperback Malliavin Calculus: Theory and Applications With Python Book

ISBN: B0DPNGHHC3

ISBN13: 9798302593535

Malliavin Calculus: Theory and Applications With Python

Embark on a transformative journey through the forefront of stochastic calculus with this comprehensive and authoritative exploration of Malliavin Calculus and its myriad applications. This monumental work, spanning 66 meticulously crafted chapters, delves into advanced mathematical concepts and innovative methodologies that challenge conventional boundaries and pioneer new horizons in mathematics and programming.

Key Features:

In-Depth Theoretical Frameworks: Gain a profound understanding of the Wiener space, Malliavin derivative, and Skorokhod integral, including their definitions, properties, and intricate relationships within the stochastic calculus landscape.Cutting-Edge Applications: Explore the application of Malliavin Calculus across diverse fields such as quantitative finance, machine learning, quantum stochastic calculus, stochastic control theory, and robotics. Each chapter provides original theoretical developments that bridge the gap between abstract concepts and practical implementation.Advanced Topics in Stochastic Analysis: Delve into specialized subjects like fractional Brownian motion, stochastic partial differential equations, non-commutative Malliavin Calculus, and stochastic topology, pushing the boundaries of traditional analysis and opening avenues for future research.Interdisciplinary Perspectives: Benefit from the integration of interdisciplinary approaches that connect mathematics with fields like biology, physics, economics, and engineering, demonstrating the universal applicability of Malliavin Calculus.

Examples of Groundbreaking Content:

In the chapter on Fractional Brownian Motion and Malliavin Calculus, discover pioneering techniques for addressing the challenges posed by the non-Markovian nature of fractional Brownian motion. Learn how these methods open new pathways in modeling and analyzing systems with memory effects, impacting fields such as financial mathematics and signal processing.Stochastic Neural Networks and Deep Learning offers an in-depth investigation into how stochastic differential equations model neural dynamics. Uncover innovative methodologies that enhance the robustness and interpretability of deep learning models, crucial for advancing artificial intelligence and machine learning applications.Explore Non-Commutative Malliavin Calculus, where the complexities of defining derivatives and integrals in non-commutative settings are unraveled. This chapter provides advanced theoretical developments with significant implications for quantum field theory and quantum information, equipping readers to tackle complex quantum stochastic systems.The chapter on Stochastic Optimal Transportation introduces the emerging field that connects Malliavin Calculus with optimal transport theory. Investigate transport maps and coupling of stochastic processes, with applications that extend to economics and fluid dynamics.

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Math Mathematics Science & Math

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