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Robust estimation with parametric score function estimation
IEEE International Conference on Acoustics Speech and Signal Processing, 2002Robust estimation of signal parameters in the additive noise model has become an important problem. Its relevance can be attributed to the realisation that impulsive noise is present in communications channels. The approach to robust estimation taken here follows the M-estimation concept of robust statistics, except the score function is modeled as a ...
Ramon F. Brcich, Abdelhak M. Zoubir
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On the Estimation of Parametric Density Functions
Biometrika, 1980SUMMARY The best invariant estimate of the parametric density function in statistical models invariant under a transformation group is derived. The estimate is best with respect to a goodness-of-fit criterion based on an informa,tion measure. We are concerned with the estimation of a parametric density function p(y I 0) using data x.
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On Coherence in Parametric Density Estimation
Biometrika, 1990SUMMARY In parametric density estimation the existence of a prior distribution on the parameter dictates the use of the corresponding predictive density function as estimate. This paper argues that in a decision theory approach to parameter density estimation any loss function introduced should lead to this predictive result for situations where prior ...
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A parametric technique for time delay estimation
ICASSP '82. IEEE International Conference on Acoustics, Speech, and Signal Processing, 1984Estimating the time-delay between two received signals is formulated as a parameter estimation problem for a certain spectral model. The model parameters are computed by a two step procedure: The modified Yule-Walker equations are used to estimate the autoregressive coefficients of the source signal, and a frequency domain squared error criterion is ...
Benjamin Friedlander, Boaz Porat
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On Information Inequalities in the Parametric Estimation
Theory of Probability & Its Applications, 1993Let \(X_ 1,X_ 2,\dots\) be independent, identically distributed random variables, \(X_ i \in ({\mathcal X},\mu)\). Assume that \(X_ 1\) belongs to a distribution \(P_ \theta\) from a parametric family \(\{P_ t\); \(t \in \Theta\}\), where \(\Theta\) is an open subset of \(\mathbb{R}^ d\) and, for any \(t \in \Theta\), \(P_ t\) is absolutely continuous ...
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Parametric and Nonparametric FDR Estimation Revisited
Biometrics, 2006Summary Nonparametric and parametric approaches have been proposed to estimate false discovery rate under the independent hypothesis testing assumption. The parametric approach has been shown to have better performance than the nonparametric approaches. In this article, we study the nonparametric approaches and quantify the underlying relations between
Wu, Baolin, Guan, Zhong, Zhao, Hongyu
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On multinomial parametric estimation
Communications in Statistics - Theory and Methods, 1983When the multinomial probabilities are functions of a vector 8 it is shown that when bias correction is applied, the maximum likelihood estimator of 0 is least deficient in a class of estimators which includes the minimum chi-square and the minimum modified chi-square estimators.
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Journal of the American Statistical Association, 1971
Robert Bohrer, M. T. Wasan
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Robert Bohrer, M. T. Wasan
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Unsupervised PET logan parametric image estimation using conditional deep image prior
Medical Image Analysis, 2022Kuang Gong, Quanzheng Li, Huafeng Liu
exaly

