Please use this identifier to cite or link to this item: http://archive.cmb.ac.lk:8080/xmlui/handle/70130/5419
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dc.contributor.authorLokupitiya, Ravindra S.-
dc.contributor.authorLokupitiya, Erandathie-
dc.contributor.authorPaustian, Keith-
dc.date.accessioned2021-06-23T08:08:48Z-
dc.date.available2021-06-23T08:08:48Z-
dc.date.issued2005-
dc.identifier.uriDOI: 10.1002/env.773-
dc.identifier.urihttp://archive.cmb.ac.lk:8080/xmlui/handle/70130/5419-
dc.description.abstractMost ecological data sets contain missing values, a fact which can cause problems in the analysis and limit the utility of resulting inference. However, ecological data also tend to be spatially correlated, which can aid in estimating and imputing missing values. We compared four existing methods of estimating missing values: regression, kernel smoothing, universal kriging, and multiple imputation. Data on crop yields from the National Agricultural Statistical Survey (NASS) and the Census of Agriculture (Ag Census) were the basis for our analysis.Our goal was to find the best method to impute missing values in the NASS datasets. For this comparison, we selected the NASS data for barley crop yield in 1997 as our reference dataset. We found in this case that multiple imputation and regression were superior to methods based on spatial correlation. Universal kriging was found to be the third best method. Kernel smoothing seemed to perform very poorly. Copyright # 2005 John Wiley & Sons,Ltd.en_US
dc.language.isoenen_US
dc.publisherWiley InterScienceen_US
dc.subjectmissing valuesen_US
dc.subjectregressionen_US
dc.subjectkrigingen_US
dc.subjectkernel smoothingen_US
dc.subjectmultiple imputationen_US
dc.titleComparison of missing value imputation methods for crop yield dataen_US
dc.typeArticleen_US
Appears in Collections:Department of Zoology

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