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David Holcman

    Stochastic Processes, Multiscale Modeling, and Numerical Methods for Computational Cellular Biology
    Stochastic Narrow Escape in Molecular and Cellular Biology
    Asymptotics of Elliptic and Parabolic PDEs
    • Asymptotics of Elliptic and Parabolic PDEs

      and their Applications in Statistical Physics, Computational Neuroscience, and Biophysics

      • 467pages
      • 17 heures de lecture
      5,0(1)Évaluer

      This is a monograph on the emerging branch of mathematical biophysics combining asymptotic analysis with numerical and stochastic methods to analyze partial differential equations arising in biological and physical sciences. In more detail, the book presents the analytic methods and tools for approximating solutions of mixed boundary value problems, with particular emphasis on the narrow escape problem. Informed throughout by real-world applications, the book includes topics such as the Fokker-Planck equation, boundary layer analysis, WKB approximation, applications of spectral theory, as well as recent results in narrow escape theory. Numerical and stochastic aspects, including mean first passage time and extreme statistics, are discussed in detail and relevant applications are presented in parallel with the theory. Including background on the classical asymptotic theory of differential equations, this book is written for scientists of various backgrounds interested inderiving solutions to real-world problems from first principles.

      Asymptotics of Elliptic and Parabolic PDEs
    • Stochastic Narrow Escape in Molecular and Cellular Biology

      Analysis and Applications

      • 280pages
      • 10 heures de lecture

      Focusing on the mathematical narrow escape problem, this book explores recent advancements in non-standard asymptotics within stochastic theory, highlighting its relevance to cell biology. The first section delves into advanced asymptotic methods in partial equations, catering to applied mathematicians and theoretical physicists. The second section provides computational biologists and other scientists with output formulas from the mathematical discussions, emphasizing practical applications in modeling various theoretical molecular and cellular biology challenges.

      Stochastic Narrow Escape in Molecular and Cellular Biology
    • This book focuses on the modeling and mathematical analysis of stochastic dynamical systems along with their simulations. The collected chapters will review fundamental and current topics and approaches to dynamical systems in cellular biology. This text aims to develop improved mathematical and computational methods with which to study biological processes. At the scale of a single cell, stochasticity becomes important due to low copy numbers of biological molecules, such as mRNA and proteins that take part in biochemical reactions driving cellular processes. When trying to describe such biological processes, the traditional deterministic models are often inadequate, precisely because of these low copy numbers. This book presents stochastic models, which are necessary to account for small particle numbers and extrinsic noise sources. The complexity of these models depend upon whether the biochemical reactions are diffusion-limited or reaction-limited. In the former case, one needs to adopt the framework of stochastic reaction-diffusion models, while in the latter, one can describe the processes by adopting the framework of Markov jump processes and stochastic differential equations. Stochastic Processes, Multiscale Modeling, and Numerical Methods for Computational Cellular Biology will appeal to graduate students and researchers in the fields of applied mathematics, biophysics, and cellular biology.

      Stochastic Processes, Multiscale Modeling, and Numerical Methods for Computational Cellular Biology