Answer to Question #345508 in Statistics and Probability for Mike

Question #345508

The head of the mathematics department announced that the mean score of Grade 11 students in the second periodic test in statistics was 89, And a standard deviation was 12. One student believed that the main score was less than this, So the student randomly selected 34 students and computer do you mean score, And obtained I mean score of 85. At 0.01 level of significance, Construct the critical regions.

Expert's answer

The following null and alternative hypotheses need to be tested:

"H_0:\\mu=89"

"H_a:\\mu<89"

This corresponds to a left-tailed test, for which a z-test for one mean, with known population standard deviation will be used.

Based on the information provided, the significance level is "\\alpha = 0.01," and the critical value for a left-tailed test is (using t-table) "z_c = -2.3263."

The rejection region for this left-tailed test is "R = \\{z: z < -2.3263\\}."

The z-statistic is computed as follows:

"z=\\dfrac{\\bar{x}-\\mu}{\\sigma\/\\sqrt{n}}=\\dfrac{85-89}{12\/\\sqrt{34}}\\approx-1.94"

Since it is observed that "z = -1.94> -2.3263=z_c," it is then concluded that the null hypothesis is not rejected.

Therefore, there is not enough evidence to claim that the population mean "\\mu"

is less than 89, at the "\\alpha = 0.01" significance level.