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### test-auto-mlmm.R ---
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## Author: Brice Ozenne
## Created: May 31 2021 (15:20)
## Version:
## Last-Updated: jul 31 2023 (18:10)
## By: Brice Ozenne
## Update #: 57
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### Commentary:
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### Change Log:
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### Code:
if(FALSE){
library(testthat)
library(mice)
library(LMMstar)
}
context("Check mlmm ")
LMMstar.options(method.numDeriv = "Richardson", precompute.moments = TRUE)
## * Multiple imputation
set.seed(10)
n <- 100
X <- rnorm(n)
Y <- rnorm(n) + 0.25*X
df <- data.frame(Y=Y, X=X)
df[1:5,"X"] <- NA
test_that("mlmm: pool",{
dfA <- mice(df, m = 10, printFlag = FALSE)
GS <- summary(pool(with(dfA, lm(Y~X))))
e.mlmm <- mlmm(Y~X, by = ".imp", data = complete(dfA, action = "long"),
effects = c("X=0"), trace = FALSE)
test <- model.tables(e.mlmm, method = "pool.rubin")
## confint(e.mlmm, method = "pool.rubin", columns = c("estimate", "se", "df", "lower", "upper", "p.value" ))
expect_equal(as.double(GS[GS$term=="X",c("estimate","std.error","df","p.value")]),
as.double(test[c("estimate","se","df","p.value")]), tol = 1e-4)
})
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### test-auto-mlmm.R ends here
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