Nothing
aw.test <- function (formula, data, alpha = 0.05, na.rm = TRUE, verbose = TRUE)
{
data <- model.frame(formula, data)
dp <- as.character(formula)
DNAME <- paste(dp[[2L]], "and", dp[[3L]])
METHOD <- "Adjusted Welch's Heteroscedastic F Test"
if (na.rm) {
completeObs <- complete.cases(data)
data <- data[completeObs, ]
}
if (any(colnames(data) == dp[[3L]]) == FALSE)
stop("The name of group variable does not match the variable names in the data. The group variable must be one factor.")
if (any(colnames(data) == dp[[2L]]) == FALSE)
stop("The name of response variable does not match the variable names in the data.")
y = data[[dp[[2L]]]]
group = data[[dp[[3L]]]]
if (!(is.factor(group) | is.character(group)))
stop("The group variable must be a factor or a character.")
if (is.character(group))
group <- as.factor(group)
if (!is.numeric(y))
stop("The response must be a numeric variable.")
n <- length(y)
x.levels <- levels(factor(group))
y.means <- tapply(y, group, mean)
y.vars <- tapply(y, group, var)
y.n <- tapply(y, group, length)
y.c <- (y.n - 1)/(y.n - 3)
y.w <- y.n/(y.c*y.vars)
y.h <- y.w/sum(y.w)
K <- length(x.levels)
v <- (K^2-1)/(3*sum((1/(y.n-1))*((1-y.h)^2)))
Ftest <- sum(y.w*((y.means-sum(y.h*y.means))^2))/((K-1)+2*(K-2)*(1/(K+1))*sum((1/(y.n-1))*((1-y.h)^2)))
p.value = pf(Ftest, K-1, v, lower.tail = F)
if (verbose) {
cat("\n", "", METHOD, paste("(alpha = ",
alpha, ")", sep = ""), "\n", sep = " ")
cat("-------------------------------------------------------------",
"\n", sep = " ")
cat(" data :", DNAME, "\n\n", sep = " ")
cat(" statistic :", Ftest, "\n", sep = " ")
cat(" num df :", K-1, "\n", sep = " ")
cat(" denom df :", v, "\n", sep = " ")
cat(" p.value :", p.value, "\n\n", sep = " ")
cat(if (p.value > alpha) {
" Result : Difference is not statistically significant."
}
else {
" Result : Difference is statistically significant."
}, "\n")
cat("-------------------------------------------------------------",
"\n\n", sep = " ")
}
result <- list()
result$statistic <- Ftest
result$parameter <- c(K-1, v)
result$p.value <- p.value
result$alpha <- alpha
result$method <- METHOD
result$data <- data
result$formula <- formula
attr(result, "class") <- "owt"
invisible(result)
}
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