نتایج جستجو برای: dispersion estimator

تعداد نتایج: 91765  

Journal: :journal of agricultural science and technology 2016
h. ramezani a. grafstrom h. naghavi a. fallah sh. shataee

three k-tree distance and fixed-sized plot designs were used for estimating tree density in sparse oak forests. these forests cover the main part of the zagros mountain area in western iran. they are non-timber-oriented forest but important for protection purposes. the main objective was to investigate the statistical performance of k-tree distance and fixed-sized plot designs in the estimation...

Journal: :journal of sciences, islamic republic of iran 2013
a. karimnezhad

let x be a random variable from a normal distribution with unknown mean θ and known variance σ2. in many practical situations, θ is known in advance to lie in an interval, say [−m,m], for some m > 0. as the usual estimator of θ, i.e., x under the linex loss function is inadmissible, finding some competitors for x becomes worthwhile. the only study in the literature considered the problem of min...

Load Frequency Control (LFC) has received considerable attention during last decades. This paper proposes a new method for designing decentralized interaction estimators for interconnected large-scale systems and utilizes it to multi-area power systems. For each local area, a local estimator is designed to estimate the interactions of this area using only the local output measurements. In fact,...

 Minimax estimation problems with restricted parameter space reached increasing interest within the last two decades Some authors derived minimax and admissible estimators of bounded parameters under squared error loss and scale invariant squared error loss In some truncated estimation problems the most natural estimator to be considered is the truncated version of a classic...

Journal: :Journal of the American Statistical Association 2021

We propose an optimal-transport-based matching method to nonparametrically estimate linear models with independent latent variables. The consists in generating pseudo-observations from the variables, so that Euclidean distance between model’s predictions and their matched counterparts data is minimized. show our nonparametric estimator consistent, we document it performs well simulated data. ap...

A. Karimnezhad

Let X be a random variable from a normal distribution with unknown mean θ and known variance σ2. In many practical situations, θ is known in advance to lie in an interval, say [−m,m], for some m > 0. As the usual estimator of θ, i.e., X under the LINEX loss function is inadmissible, finding some competitors for X becomes worthwhile. The only study in the literature considered the problem of min...

V. Fakoor

Kernel density estimators are the basic tools for density estimation in non-parametric statistics.  The k-nearest neighbor kernel estimators represent a special form of kernel density estimators, in  which  the  bandwidth  is varied depending on the location of the sample points. In this paper‎, we  initially introduce the k-nearest neighbor kernel density estimator in the random left-truncatio...

State estimation is the foundation of any control and decision making in power networks. The first requirement for a secure network is a precise and safe state estimator in order to make decisions based on accurate knowledge of the network status. This paper introduces a new estimator which is able to detect bad data with few calculations without need for repetitions and estimation residual cal...

2005
Christopher J. Miller Robert C. Nichol Daniel Reichart Risa H. Wechsler August E. Evrard James Annis Timothy A. McKay Neta A. Bahcall Mariangela Bernardi Hans Boehringer Andrew J. Connolly Tomotsugu Goto Alexie Kniazev Donald Lamb Marc Postman Donald P. Schneider Ravi K. Sheth Wolfgang Voges

We present the “C4 Cluster Catalog”, a new sample of 748 clusters of galaxies identified in the spectroscopic sample of the Second Data Release (DR2) of the Sloan Digital Sky Survey (SDSS). The C4 cluster–finding algorithm identifies clusters as overdensities in a seven-dimensional position and color space, thus minimizing projection effects that have plagued previous optical cluster selection....

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