Abstract:We introduce an iterative linear estimator (ILE) for estimating a signal from samples having location errors and additive noise. We assume that the signals lie in the span of a finite basis and the location errors and noise are mutually independent and normally distributed. The parameter estimation problem is formulated as obtaining a maximum likelihood (ML) estimate given the observations and an observation model. Using a linearized observation model we derive an approximation to the likelihood function.We th… Show more
“…But the channel dispersion phenomenon occurs in the specific geographical environment, it is not a universal. A new time delay estimation executing the maximum likelihood rule under multipath environment is proposed [5], the global maximum of compress likelihood function is calculated under the small amount of calculation, and then to make distinctions for channel. When…”
“…But the channel dispersion phenomenon occurs in the specific geographical environment, it is not a universal. A new time delay estimation executing the maximum likelihood rule under multipath environment is proposed [5], the global maximum of compress likelihood function is calculated under the small amount of calculation, and then to make distinctions for channel. When…”
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