Search results for "ESTIMATOR"

showing 10 items of 313 documents

Using Complex Surveys to Estimate theL1-Median of a Functional Variable: Application to Electricity Load Curves

2012

Mean proles are widely used as indicators of the electricity consumption habits of customers. Currently, Electricit e De France (EDF), estimates class load proles by using point-wise mean function. Unfortunately, it is well known that the mean is highly sensitive to the presence of outliers, such as one or more consumers with unusually high-levels of consumption. In this paper, we propose an alternative to the mean prole: the L1-median prole which is more robust. When dealing with large datasets of functional data (load curves for example), survey sampling approaches are useful for estimating the median prole and avoid storing all of the data. We propose here estimators of the median trajec…

Statistics and Probabilityeducation.field_of_studyComputer sciencePopulationEstimatorSurvey samplingSampling (statistics)Simple random sampleStratified samplingHorvitz–Thompson estimatorOutlierStatisticsStatistics Probability and UncertaintyeducationInternational Statistical Review
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Spatial Mark-Recapture Method in the Estimation of Crayfish Population Size

1995

The mark-recapture method is considered for estimation of population size of slowly moving animals like crayfish. The Petersen type estimator for closed population is generalized for situations where recaptures are spatially dependent between the capture sites, and its variance approximation is derived using point processes as models for the population. The method of quadratic forms is suggested to be used as variance estimator. Finally, a trapping design is proposed where onc trap at recapture is replaced by four adjacent traps. A simulation experiment is performed to explain the robusticity of the new trapping design against movements of animals.

Statistics and Probabilityeducation.field_of_studyPopulation sizePopulationEstimatorGeneral MedicineTrappingCrayfishPoint processMark and recaptureStatisticsStatistics Probability and UncertaintySpatial dependenceeducationMathematicsBiometrical Journal
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Efficient Estimation of Non-Linear Finite Population Parameters by Using Non-Parametrics

2013

Summary Currently, high precision estimation of non-linear parameters such as Gini indices, low income proportions or other measures of inequality is particularly crucial. We propose a general class of estimators for such parameters that take into account univariate auxiliary information assumed to be known for every unit in the population. Through a non-parametric model-assisted approach, we construct a unique system of survey weights that can be used to estimate any non-linear parameter that is associated with any study variable of the survey, using a plug-in principle. Based on a rigorous functional approach and a linearization principle, the asymptotic variance of the estimators propose…

Statistics and Probabilityeducation.field_of_studyPopulationUnivariateEstimatorVariance (accounting)Delta methodLinearizationStatisticsEconometricsStatistics Probability and UncertaintyeducationSmoothingParametric statisticsMathematicsJournal of the Royal Statistical Society Series B: Statistical Methodology
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A Random Field Approach to Transect Counts of Wildlife Populations

1991

Line transect counting of a wildlife population is considered a sampling from a planar marked point process, where the marks describe the detectability of the animals. Sampling properties of transect counts and a new density estimator are derived from a counting process, which is a shot-noise field induced by the marked point process. A general formula for the sampling variance of a transect is derived and applied to compare five common types of transects. Some stereological connections of transect sampling and density estimators are shown.

Statistics and Probabilityeducation.field_of_studyRandom fieldCounting processCovariance functionPopulationSampling (statistics)EstimatorGeneral MedicineDensity estimationStatisticsStatistics Probability and UncertaintyeducationTransectMathematicsBiometrical Journal
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On the Ambiguous Consequences of Omitting Variables

2015

This paper studies what happens when we move from a short regression to a long regression (or vice versa), when the long regression is shorter than the data-generation process. In the special case where the long regression equals the data-generation process, the least-squares estimators have smaller bias (in fact zero bias) but larger variances in the long regression than in the short regression. But if the long regression is also misspecified, the bias may not be smaller. We provide bias and mean squared error comparisons and study the dependence of the differences on the misspecification parameter.

Statistics::Machine LearningStatistics::TheoryC51C52BiasMisspecificationLeast-squares estimatorsddc:330Statistics::MethodologyC13Mean squared errorOmitted variablesStatistics::Computation
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On the ambiguous consequences of omitting variables

2015

This paper studies what happens when we move from a short regression to a long regression (or vice versa), when the long regression is shorter than the data-generation process. In the special case where the long regression equals the data-generation process, the least-squares estimators have smaller bias (in fact zero bias) but larger variances in the long regression than in the short regression. But if the long regression is also misspecified, the bias may not be smaller. We provide bias and mean squared error comparisons and study the dependence of the differences on the misspecification parameter.

Statistics::TheoryMean squared errorjel:C52Regression dilutionjel:C51Local regressionjel:C13Regression analysisOmitted-variable biasCross-sectional regressionStatistics::ComputationOmitted variables Misspecification Least-squares estimators Bias Mean squared errorStatistics::Machine LearningStatisticsEconometricsStatistics::MethodologyRegression diagnosticNonlinear regressionMathematics
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A Dominance Variant Under the Multi-Unidimensional Pairwise-Preference Framework: Model Formulation and Markov Chain Monte Carlo Estimation.

2018

Forced-choice questionnaires have been proposed as a way to control some response biases associated with traditional questionnaire formats (e.g., Likert-type scales). Whereas classical scoring methods have issues of ipsativity, item response theory (IRT) methods have been claimed to accurately account for the latent trait structure of these instruments. In this article, the authors propose the multi-unidimensional pairwise preference two-parameter logistic (MUPP-2PL) model, a variant within Stark, Chernyshenko, and Drasgow’s MUPP framework for items that are assumed to fit a dominance model. They also introduce a Markov Chain Monte Carlo (MCMC) procedure for estimating the model’s paramete…

Structure (mathematical logic)Bayes estimator05 social sciences050401 social sciences methodsMarkov chain Monte CarloArticlesData setsymbols.namesake0504 sociology0502 economics and businessItem response theoryConvergence (routing)StatisticsEconometricssymbolsPairwise comparisonPsychology (miscellaneous)PsychologyPreference (economics)050203 business & managementSocial Sciences (miscellaneous)Applied psychological measurement
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Bayesian Estimation of Political Transition Matrices

1994

A decision framework is used to propose a procedure designed to estimate the reallocation of the vote of each individual party between two consecutive political elections, given the results of the elections, the information provided by a sample survey, and some assumptions on the hierarchical structure of the population.

Structure (mathematical logic)Politicseducation.field_of_studyBayes estimatorComputer sciencePolitical ElectionsPopulationEconometricsSurvey samplingComputingMilieux_LEGALASPECTSOFCOMPUTINGTransition matriceseducation
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Cardiovascular and respiratory variability during orthostatic and mental stress: A comparison of entropy estimators

2017

The aim of this study is to characterize cardiovascular and respiratory signals during orthostatic and mental stress as reflected in indices of entropy and complexity, providing a comparison between the performance of different estimators. To this end, the heart rate variability, systolic blood pressure, diastolic blood pressure and respiration time series were extracted from the recordings of 61 healthy volunteers undergoing a protocol consisting of supine rest, head-up tilt test and mental arithmetic task. The analysis was performed in the information domain using measures of entropy and conditional entropy, estimated through model-based (linear) and model-free (binning, nearest neighbor)…

Supine positionEntropySpeech recognitionBiomedical EngineeringBlood PressureHealth InformaticsCardiovascular System01 natural sciences03 medical and health sciencesOrthostatic vital signs0302 clinical medicineHeart RateTilt-Table Test0103 physical sciencesStatisticsHumansHeart rate variabilityEntropy (information theory)Respiratory system010306 general physicsMathematics1707Conditional entropyEstimatorHeartBlood pressureSignal ProcessingSettore ING-INF/06 - Bioingegneria Elettronica E InformaticaStress Psychological030217 neurology & neurosurgery
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Semiparametric Models with Functional Responses in a Model Assisted Survey Sampling Setting : Model Assisted Estimation of Electricity Consumption Cu…

2010

This work adopts a survey sampling point of view to estimate the mean curve of large databases of functional data. When storage capacities are limited, selecting, with survey techniques a small fraction of the observations is an interesting alternative to signal compression techniques. We propose here to take account of real or multivariate auxiliary information available at a low cost for the whole population, with semiparametric model assisted approaches, in order to improve the accuracy of Horvitz-Thompson estimators of the mean curve. We first estimate the functional principal components with a design based point of view in order to reduce the dimension of the signals and then propose s…

Survey methodologyeducation.field_of_studyStatisticsPrincipal component analysisPopulationEconomicsEstimatorSignal compressionSurvey samplingeducationHorvitz–Thompson estimatorSemiparametric model
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