NASA NTRS · 19720039429
Approximate estimation for systems with quantized data.
Abstract
Estimation of the state of a nonlinear discrete-time system using quantized data is considered. An exact solution for the maximum likelihood estimate is expressed as the solution of a nonlinear two-point boundary-value problem. Approximate recursive solutions for both the maximum likelihood and the conditional-mean estimates are obtained. The results of Monte-Carlo simulations are presented in which the performance of these two algorithms is compared with that of a Kalman filter in which the quantization error is approximated by white noise.-
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Clements, K. A., Haddad, R. A.. 1972-04-01. Approximate estimation for systems with quantized data.. https://ntrs.nasa.gov/citations/19720039429
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