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Maximum Likelihood Estimation

- Logic and Practice

Om Maximum Likelihood Estimation

In this volume the underlying logic and practice of maximum likelihood (ML) estimation is made clear by providing a general modelling framework that utilizes the tools of ML methods. This framework offers readers a flexible modelling strategy since it accommodates cases from the simplest linear models to the most complex nonlinear models that link a system of endogenous and exogenous variables with non-normal distributions. Using examples to illustrate the techniques of finding ML estimators and estimates, Eliason discusses: what properties are desirable in an estimator; basic techniques for finding ML solutions; the general form of the covariance matrix for ML estimates; the sampling distribution of ML estimators; the application of ML in the normal distribution as well as in other useful distributions; and some helpful illustrations of likelihoods.

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  • Språk:
  • Engelsk
  • ISBN:
  • 9780803941076
  • Bindende:
  • Paperback
  • Sider:
  • 96
  • Utgitt:
  • 29. september 1993
  • Dimensjoner:
  • 141x216x5 mm.
  • Vekt:
  • 118 g.
  Gratis frakt
Leveringstid: 2-4 uker
Forventet levering: 8. januar 2026
Utvidet returrett til 31. januar 2026
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Beskrivelse av Maximum Likelihood Estimation

In this volume the underlying logic and practice of maximum likelihood (ML) estimation is made clear by providing a general modelling framework that utilizes the tools of ML methods. This framework offers readers a flexible modelling strategy since it accommodates cases from the simplest linear models to the most complex nonlinear models that link a system of endogenous and exogenous variables with non-normal distributions. Using examples to illustrate the techniques of finding ML estimators and estimates, Eliason discusses: what properties are desirable in an estimator; basic techniques for finding ML solutions; the general form of the covariance matrix for ML estimates; the sampling distribution of ML estimators; the application of ML in the normal distribution as well as in other useful distributions; and some helpful illustrations of likelihoods.

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