نتایج جستجو برای: change point maximum likelihood estimator mle step change simple linear profile within

تعداد نتایج: 3258606  

2013
Christophe Saint-Jean Frank Nielsen

We describe an original implementation of k-Maximum Likelihood Estimator (k-MLE)[1], a fast algorithm for learning finite statistical mixtures of exponential families. Our version converges to a local maximum of the complete likelihood while guaranteeing not to have empty clusters. To initialize k-MLE, we propose a careful and greedy strategy inspired by k-means++ which selects automatically cl...

Fatemeh Bagheri, Hamzeh Torabi,

This paper considers an Extended Generalized Half Logistic distribution. We derive some properties of this distribution and then we discuss estimation of the distribution parameters by the methods of moments, maximum likelihood and the new method of minimum spacing distance estimator based on complete data. Also, maximum likelihood equations for estimating the parameters based on Type-I and Typ...

2012
Josmar Mazucheli Jorge Alberto Achcar

• In many applications of lifetime data analysis, it is important to perform inferences about the change-point of the hazard function. The change-point could be a maximum for unimodal hazard functions or a minimum for bathtub forms of hazard functions and is usually of great interest in medical or industrial applications. For lifetime distributions where this change-point of the hazard function...

2012
Tristan Launay Anne Philippe Sophie Lamarche Jean Leray

We prove the weak consistency of the posterior distribution and that of the Bayes estimator for a two-phase piecewise linear regression mdoel where the break-point is unknown. The non-differentiability of the likelihood of the model with regard to the break-point parameter induces technical difficulties that we overcome by creating a regularised version of the problem at hand. We first recover ...

2013
Joscha Diehl Peter K. Friz Hilmar Mai

We consider the estimation problem of an unknown drift parameter within classes of non-degenerate diffusion processes. The Maximum Likelihood Estimator (MLE) is analyzed with regard to its pathwise stability properties and robustness towards misspecification in volatility and even the very nature of noise. We construct a version of the estimator based on rough integrals (in the sense of T. Lyon...

Journal: :IEEE Transactions on Signal Processing 2023

The Gauss Markov theorem states that the weighted least squares estimator is a linear minimum variance unbiased estimation (MVUE) in models. In this paper, we take first step towards extending result to non-linear settings via deep learning with bias constraints. classical approach designing MVUEs through maximum likelihood (MLE) which often involves real-time computationally challenging optimi...

2000
Myles Hollander Glen Laird Kai Sheng Song

The maximum likelihood estimator MLE for the survival function ST under the proportional hazards model of censorship is derived and shown to di er from the Abdushukurov Cheng Lin estimator when the class of allowable distributions includes all continuous and discrete distributions The estimators are compared via an example The MLE is calculated using a Newton Raphson iterative procedure and imp...

Journal: :Annals of statistics 2009
Fadoua Balabdaoui Kaspar Rufibach Jon A Wellner

We find limiting distributions of the nonparametric maximum likelihood estimator (MLE) of a log-concave density, i.e. a density of the form f(0) = exp varphi(0) where varphi(0) is a concave function on R. Existence, form, characterizations and uniform rates of convergence of the MLE are given by Rufibach (2006) and Dümbgen and Rufibach (2007). The characterization of the log-concave MLE in term...

In this article, we consider the problem of estimating the stress-strength reliability $Pr (X > Y)$ based on upper record values when $X$ and $Y$ are two independent but not identically distributed random variables from the power hazard rate distribution with common scale parameter $k$. When the parameter $k$ is known, the maximum likelihood estimator (MLE), the approximate Bayes estimator and ...

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