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4.32 True or false. Determine if the following statements are true or false, and explain your reasoning. If false, state how it could be corrected.
4.32 True or false. Determine if the following statements are true or false, and explain your reasoning. If false, state how it could be corrected. (a) If a given value (for example, the null hypothesized value of a parameter) is within a 95% confidence interval, it will also be within a 99% confidence interval. (b) Decreasing the significance level (a) will increase the probability of making a Type 1 Error. (c) Suppose the null hypothesis is / = 5 and we fail to reject Ho. Under this scenario, the true population mean is 5. (d) If the alternative hypothesis is true, then the probability of making a Type 2 Error and the power of a test add up to 1. (e) With large sample sizes, even small differences between the null value and the true value of the parameter, a difference often called the effect size , will be identified as statistically significant
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