نتایج جستجو برای: df reml
تعداد نتایج: 10972 فیلتر نتایج به سال:
To use Electroencephalography (EEG) and Magnetoencephalography (MEG) as functional brain 3D imaging techniques, identifiable distributed source models are required. The reconstruction of EEG/MEG sources rests on inverting these models and is ill-posed because the solution does not depend continuously on the data and there is no unique solution in the absence of prior information or constraints....
This paper establishes asymptotic results for the maximum likelihood and restricted (REML) estimators of parameters in nested error regression model clustered data when both number independent clusters cluster sizes (the observations each cluster) go to infinity. Under very mild conditions, are shown be asymptotically normal with an elegantly structured covariance matrix. There no restrictions ...
بهکارگیری روش تجزیۀ آماری مناسب میتواند مکمل اجرای یک طرح آزمایشی دقیق برای اصلاح نباتات و دام باشد. در این آزمایش 33 ِژنوتیپ گندم ایرانی نان در قالب طرح بلوکهای کامل تصادفی با سه تکرار در دو شرایط عدم تنش و تنش شوری در مزرعۀ تحقیقاتی مرکز ملی شوری ایران واقع در استان یزد کشت شدند. از برآوردگر حداکثر درستنمایی محدودشده (Restricted Maximum Likelihood, REML) برای بررسی ساختارهای مختلف واریانس-ک...
Lognormal linear models are widely used in applications, and many times it is of interest to predict the response variable at the original scale for a new set of covariate values. In this paper we consider the problem of efficient estimation of the conditional mean of the response variable at the original scale for lognormal linear models. Several existing estimators are reviewed, including the...
This research was carried out to investigate the heterogeneity of milk yield variance components in different production levels of holstein cattles. The first lactation milk yield records of 95945 Holstein cattles, which had calved in 651 herds through years 1991 to 2000, were used in this research. Data was collected by the Animal Breeding Center of Iran and adjusted for two-time milking per d...
In a spatial regression context, scientists are often interested in a physical interpretation of components of the parametric covariance function. For example, spatial covariance parameter estimates in ecological settings have been interpreted to describe spatial heterogeneity or “patchiness” in a landscape that cannot be explained by measured covariates. In this article, we investigate the inf...
Autoregressive moving average (ARMA) models are useful statistical tools to examine the dynamical characteristics of ecological time-series data. Here, we illustrate the utility and challenges of applying ARMA (p,q) models, where p is the dimension of the autoregressive component of the model, and q is the dimension of the moving average component. We focus on parameter estimation and model sel...
In this paper we consider two closely related problems: estimation of eigenvalues and eigenfunctions of the covariance kernel of functional data based on (possibly) irregular measurements, and the problem of estimating the eigenvalues and eigenvectors of the covariance matrix for highdimensional Gaussian vectors. In [A geometric approach to maximum likelihood estimation of covariance kernel fro...
In this paper we consider two closely related problems : estimation of eigenvalues and eigenfunctions of the covariance kernel of functional data based on (possibly) irregular measurements, and the problem of estimating the eigenvalues and eigenvectors of the covariance matrix for high-dimensional Gaussian vectors. In Peng and Paul (2007), a restricted maximum likelihood (REML) approach has bee...
Maximum likelihood or restricted maximum likelihood (REML) estimates of the parameters in linear mixed-effects models can be determined using the lmer function in the lme4 package for R. As for most model-fitting functions in R, the model is described in an lmer call by a formula, in this case including both fixedand random-effects terms. The formula and data together determine a numerical repr...
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