slmfit | R Documentation |
Estimates regression coefficients and spatial autocorrelation parameters, given spatial coordinates and a model formula.
slmfit(
formula,
data,
xcoordcol,
ycoordcol,
areacol = NULL,
stratacol = NULL,
CorModel = "Exponential",
estmethod = "REML",
covestimates = c(NA, NA, NA)
)
formula |
is an |
data |
is a data frame or tibble with the response column,
the covariates to be used for the block kriging, and the
spatial coordinates for all of the sites. Alternatively, data can be
an |
xcoordcol |
is the name of the column in the data frame with x coordinates or longitudinal coordinates |
ycoordcol |
is the name of the column in the data frame with y coordinates or latitudinal coordinates |
areacol |
is the name of the column with the areas of the sites. By default, we assume that all sites have equal area, in which case a vector of 1's is used as the areas. |
stratacol |
is the name of the the column with the stratification variable, if strata are to be fit separately, with different covariance parameter estimates. |
CorModel |
is the covariance structure. By default,
|
estmethod |
is either the default |
covestimates |
is an optional vector of covariance
parameter estimates (nugget, partial sill, range). If these are
given and |
a list of class slmfit
with
the spatial covariance estimates
the regression coefficient estimates
the covariance matrix of the fixed effects
minus two times the log-likelihood of the model
the names of the predictors
the sample size
the name of the covariance model used
a vector of residuals
the design matrix
a vector of the sampled densities
a list containing
formula, the model formula
data, the data set input as the data
argument
xcoordcol, the name of the x-coordinate column
ycoordcol, the name of the y-coordinate column
estmethod, either REML or ML
CorModel, the correlation model used
estimated covariance matrix of all sites
Inverted covariance matrix on the sampled sites
the vector of areas.
data(exampledataset) ## load a toy data set
slmobj <- slmfit(formula = counts ~ pred1 + pred2, data = exampledataset,
xcoordcol = 'xcoords', ycoordcol = 'ycoords', areacol = 'areavar')
summary(slmobj)
data(exampledataset) ## load a toy data set
exampledataset$strata <- c(rep("A", 19), rep("B", 21))
strataobj <- slmfit(formula = counts ~ pred1 + pred2,
data = exampledataset, stratacol = "strata",
xcoordcol = 'xcoords', ycoordcol = 'ycoords', areacol = 'areavar')
summary(strataobj)
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