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An Introduction to Kalman Filtering with MATLAB Examples

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The Kalman filter is the Bayesian optimum solution to the problem of sequentially estimating the states of a dynamical system in which the state evolution and measurement processes are both linear and Gaussian. Given the ubiquity of such systems, the Kalman filter finds use in a variety of applications, e.g., target tracking, guidance and navigation, and communications systems. The purpose of this book is to present a brief introduction to Kalman filtering. The theoretical framework of the Kalman filter is first presented, followed by examples showing its use in practical applications. Extensions of the method to nonlinear problems and distributed applications are discussed. A software implementation of the algorithm in the MATLAB programming language is provided, as well as MATLAB code for several example applications discussed in the manuscript.

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  • Sprog:
  • Engelsk
  • ISBN:
  • 9783031014086
  • Indbinding:
  • Paperback
  • Sideantal:
  • 84
  • Udgivet:
  • 15. oktober 2013
  • Størrelse:
  • 191x6x235 mm.
  • Vægt:
  • 176 g.
  • BLACK NOVEMBER
Leveringstid: 8-11 hverdage
Forventet levering: 6. december 2024

Beskrivelse af An Introduction to Kalman Filtering with MATLAB Examples

The Kalman filter is the Bayesian optimum solution to the problem of sequentially estimating the states of a dynamical system in which the state evolution and measurement processes are both linear and Gaussian. Given the ubiquity of such systems, the Kalman filter finds use in a variety of applications, e.g., target tracking, guidance and navigation, and communications systems. The purpose of this book is to present a brief introduction to Kalman filtering. The theoretical framework of the Kalman filter is first presented, followed by examples showing its use in practical applications. Extensions of the method to nonlinear problems and distributed applications are discussed. A software implementation of the algorithm in the MATLAB programming language is provided, as well as MATLAB code for several example applications discussed in the manuscript.

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