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What do Type I error and Type II error mean in hypothesis testing?
A scientist sets the significance level at for a hypothesis test. What does this imply about the likelihood of rejecting the null hypothesis when it is actually true?
A researcher decides to change the significance level of their hypothesis test from to . Assuming the sample size and true effect size remain the same, which of the following is the most likely consequence?
You draw simple random samples of size from a population with true proportion . You perform a one-sided test versus at . Which description correctly identifies a Type I error in this simulation, and what is the approximate number of such errors expected among the samples?
A government agency must set a significance level for testing a safety device, as a false approval could endanger lives. Given the options , , and , which should they pick and why?