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Recursive Nonlinear Estimation : A Geometric Approach

Part of the Lecture Notes in Control and Information Sciences series
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In a close analogy to matching data in Euclidean space, this monograph views parameter estimation as matching of the empirical distribution of data with a model-based distribution.

Using a Pythagorean-like geometry of the empirical and model distributions, the book suggests a solution to the problem of recursive estimation of non-Gaussian and nonlinear models which can be regarded as a specific approximation of Bayesian estimation.

The cases of independent observations and controlled dynamic systems are considered in parallel; orm er case gives insight into the latter case, which should be of interest to the control community.

A number of examples illustrate the key concepts and tools used.

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£44.99
Product Details
3540760636 / 9783540760634
Paperback / softback
519.54
25/06/1996
Germany
English
240p. : ill.
24 cm
postgraduate /research & professional Learn More