Answer to Question #347861 in Statistics and Probability for Justine Jose

Question #347861

2) A politician claims that she will receive 60% of the votes in the upcoming election. Of a random sample of 200 voters, there were 100 who will surely vote for her. Test the politician’s assertion at the 0.05 level of significance.

Expert's answer

The following null and alternative hypotheses for the population proportion needs to be tested:

"H_0:p=0.60"

"H_a:p\\not=0.60"

This corresponds to a two-tailed test, for which a z-test for one population proportion will be used.

Based on the information provided, the significance level is "\\alpha = 0.05\n\n," and the critical value for a two-tailed test is "z_c = 1.96."

The rejection region for this two-tailed test is "R = \\{z:|z|>1.96\\}."

The z-statistic is computed as follows:

"z=\\dfrac{\\hat{p}-p_0}{\\sqrt{\\dfrac{p_0(1-p_0)}{n}}}=\\dfrac{100\/200-0.6}{\\sqrt{\\dfrac{0.6(1-0.6)}{200}}}=-2.8284"

Since it is observed that "|z|=2.8284 \\ge1.96= z_c," it is then concluded that the null hypothesis is rejected.

Using the P-value approach:

The p-value is "p=2P(Z<-2.8284)= 0.004678," and since "p=0.004678<0.05=\\alpha," it is concluded that the null hypothesis is rejected.

Therefore, there is enough evidence to claim that the population proportion "p" is different than 0.60, at the "\\alpha = 0.05" significance level.

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Answer to Question #347861 in Statistics and Probability for Justine Jose

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