ttestOneS | R Documentation |
The Student's One-sample t-test is used to test the null hypothesis that the true mean is equal to a particular value (typically zero). A low p-value suggests that the null hypothesis is not true, and therefore the true mean must be different from the test value.
ttestOneS(data, vars, students = TRUE, bf = FALSE, bfPrior = 0.707,
wilcoxon = FALSE, testValue = 0, hypothesis = "dt", norm = FALSE,
qq = FALSE, meanDiff = FALSE, ci = FALSE, ciWidth = 95,
effectSize = FALSE, ciES = FALSE, ciWidthES = 95, desc = FALSE,
plots = FALSE, miss = "perAnalysis", mann = FALSE)
data |
the data as a data frame |
vars |
a vector of strings naming the variables of interest in
|
students |
|
bf |
|
bfPrior |
a number between 0.5 and 2.0 (default 0.707), the prior width to use in calculating Bayes factors |
wilcoxon |
|
testValue |
a number specifying the value of the null hypothesis |
hypothesis |
|
norm |
|
qq |
|
meanDiff |
|
ci |
|
ciWidth |
a number between 50 and 99.9 (default: 95), the width of confidence intervals |
effectSize |
|
ciES |
|
ciWidthES |
a number between 50 and 99.9 (default: 95), the width of confidence intervals for the effect sizes |
desc |
|
plots |
|
miss |
|
mann |
deprecated |
The Student's One-sample t-test assumes that the data are from a normal distribution – in the case that one is unwilling to assume this, the non-parametric Wilcoxon signed-rank can be used in it's place (However, note that the Wilcoxon signed-rank has a slightly different null hypothesis; that the *median* is equal to the test value).
A results object containing:
results$ttest | a table containing the t-test results | ||||
results$normality | a table containing the normality test results | ||||
results$descriptives | a table containing the descriptives | ||||
results$plots | an image of the descriptive plots | ||||
results$qq | an array of Q-Q plots | ||||
Tables can be converted to data frames with asDF
or as.data.frame
. For example:
results$ttest$asDF
as.data.frame(results$ttest)
data('ToothGrowth')
ttestOneS(ToothGrowth, vars = vars(len, dose))
#
# ONE SAMPLE T-TEST
#
# One Sample T-Test
# ------------------------------------------------------
# statistic df p
# ------------------------------------------------------
# len Student's t 19.1 59.0 < .001
# dose Student's t 14.4 59.0 < .001
# ------------------------------------------------------
#
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