Applied Stochastic Differential Equations
Book Details
Format
Hardback or Cased Book
Book Series
Institute of Mathematical Statistics Textbooks
ISBN-10
1316510085
ISBN-13
9781316510087
Publisher
Cambridge University Press
Imprint
Cambridge University Press
Country of Manufacture
GB
Country of Publication
GB
Publication Date
May 2nd, 2019
Print length
326 Pages
Weight
626 grams
Dimensions
23.50 x 15.80 x 2.30 cms
Product Classification:
EconometricsEconometrics and economic statisticsFinanceFinance and the finance industryDifferential calculus & equationsDifferential calculus and equationsProbability & statisticsProbability and statisticsStochasticsComputer scienceDigital signal processing (DSP)Signal processing
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This intuitive hands-on text introduces stochastic differential equations (SDEs) as motivated by applications in target tracking and medical technology, and covers their use in methodologies such as filtering, parameter estimation, and machine learning. Examples include applications of SDEs arising in physics and electrical engineering.
Stochastic differential equations are differential equations whose solutions are stochastic processes. They exhibit appealing mathematical properties that are useful in modeling uncertainties and noisy phenomena in many disciplines. This book is motivated by applications of stochastic differential equations in target tracking and medical technology and, in particular, their use in methodologies such as filtering, smoothing, parameter estimation, and machine learning. It builds an intuitive hands-on understanding of what stochastic differential equations are all about, but also covers the essentials of Itô calculus, the central theorems in the field, and such approximation schemes as stochastic Runge–Kutta. Greater emphasis is given to solution methods than to analysis of theoretical properties of the equations. The book's practical approach assumes only prior understanding of ordinary differential equations. The numerous worked examples and end-of-chapter exercises include application-driven derivations and computational assignments. MATLAB/Octave source code is available for download, promoting hands-on work with the methods.
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