Respuesta :
Answer:
[tex]ME= 1.96\sqrt{\frac{0.6 (1-0.6)}{200}}=0.0679[/tex]
[tex]0.6 - 1.96\sqrt{\frac{0.6 (1-0.6)}{200}}=0.532[/tex]
[tex]0.6 + 1.96\sqrt{\frac{0.6 (1-0.6)}{200}}=0.668[/tex]
The 95% confidence interval would be given by (0.532;0.668)
We are confident at 95% that the true proportion of students in favor of the assigned parking spaces is between 0.532 and 0.668.
Step-by-step explanation:
Previous concepts
A confidence interval is "a range of values that’s likely to include a population value with a certain degree of confidence. It is often expressed a % whereby a population means lies between an upper and lower interval". Â
The margin of error is the range of values below and above the sample statistic in a confidence interval. Â
Normal distribution, is a "probability distribution that is symmetric about the mean, showing that data near the mean are more frequent in occurrence than data far from the mean". Â
The population proportion have the following distribution
[tex]p \sim N(p,\sqrt{\frac{p(1-p)}{n}})[/tex]
Solution to the problem
The estimated proportion on this case is given by:
[tex]\hat p =\frac{120}{200}=0.6[/tex]
We assume for this case a confidence level of 95%
In order to find the critical value we need to take in count that we are finding the interval for a proportion, so on this case we need to use the z distribution. Since our interval is at 95% of confidence, our significance level would be given by [tex]\alpha=1-0.95=0.05[/tex] and [tex]\alpha/2 =0.025[/tex]. And the critical value would be given by:
[tex]z_{\alpha/2}=-1.96, z_{1-\alpha/2}=1.96[/tex]
The confidence interval for the mean is given by the following formula: Â
[tex]\hat p \pm z_{\alpha/2}\sqrt{\frac{\hat p (1-\hat p)}{n}}[/tex]
The margin of error is given by:
[tex]ME= z_{\alpha/2}\sqrt{\frac{\hat p (1-\hat p)}{n}}[/tex]
And if we replace we got:
[tex]ME= 1.96\sqrt{\frac{0.6 (1-0.6)}{200}}=0.0679[/tex]
If we replace the values obtained we got:
[tex]0.6 - 1.96\sqrt{\frac{0.6 (1-0.6)}{200}}=0.532[/tex]
[tex]0.6 + 1.96\sqrt{\frac{0.6 (1-0.6)}{200}}=0.668[/tex]
The 95% confidence interval would be given by (0.532;0.668)
We are confident at 95% that the true proportion of students in favor of the assigned parking spaces is between 0.532 and 0.668.
