نتایج جستجو برای: geostatistical analysis

تعداد نتایج: 2825702  

2007
Brian J. Smith Jun Yan Mary Kathryn Cowles

Spatial data, either areal or geostatistical (point-referenced), are becoming increasingly utilized in the study of many scientific fields due to the accessibility of data monitoring systems and associated datasets. When both types of data are available for the same underlying spatial process, computationally efficient and statistically sound methods are needed for their joint analysis. Markov ...

Journal: :International Journal of Statistics and Probability 2012

2016
Robert Marschallinger Paul Schmidt Peter Hofmann Claus Zimmer Peter M. Atkinson Johann Sellner Eugen Trinka Mark Mühlau

INTRODUCTION A geostatistical approach to characterize MS-lesion patterns based on their geometrical properties is presented. METHODS A dataset of 259 binary MS-lesion masks in MNI space was subjected to directional variography. A model function was fit to express the observed spatial variability in x, y, z directions by the geostatistical parameters Range and Sill. RESULTS Parameters Range...

Journal: :Eastern-European Journal of Enterprise Technologies 2015

2004
Konstantin Krivoruchko

The first step in statistical data analysis is to verify three data features: dependency, stationarity, and distribution. If data are independent, it makes little sense to analyze them geostatisticaly. If data are not stationary, they need to be made so, usually by data detrending and data transformation. Geostatistics works best when input data are Gaussian. If not, data have to be made to be ...

2017
Nathalie Saint-Geours Christian Lavergne Jean-Stéphane Bailly Nathalie SAINT-GEOURS Christian LAVERGNE Jean-Stéphane BAILLY Frédéric GRELOT

Geostatistical simulations are used to perform a global sensitivity analysis on a model Y = f(X1 ... Xk) where one of the model inputs Xi is a continuous 2D-field. Geostatistics allow specifying uncertainty on Xi with a spatial covariance model and generating random realizations of Xi. These random realizations are used to propagate uncertainty through model f and estimate global sensitivity in...

Journal: :Environmental Modelling and Software 2004
Mikhail F. Kanevski Roman Parkin Aleksey Pozdnukhov Vadim Timonin Michel Maignan Vasiliy V. Demyanov Stéphane Canu

The paper presents some contemporary approaches to the spatial environmental data analysis, processing and presentation. The main topics are concentrated on the decision–oriented problems of environmental and pollution spatial data mining and modelling: valorisation and representativity of data with the help of exploratory data analysis, topological, statistical and fractal measures of monitori...

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