Of 92 adults selected randomly from one town, 61 have health insurance. Find a 90% confidence...
Use the given degree of confidence and sample data to construct a confidence interval for the population proportion p. Round to three decimal palces. or 97 adults selected randomly from one town, B4 have health insurance. Find a 90% confidence interval for the true proportion of all adults in the town who have health insurance O A. 0.581 <p <0.739 OB. 0.566 <p <0.754 OC. 0.536 <p<0.784 OD. 0.548<p<0.772
1-Prop Conf. Int. 07 or 94 adults selected randomly from one town, 67 have health insurance. Find a 90% confidence interval for the true proportion of all adults in the town who have health insurance. Use Interval Notation with decimal rounded to the thousandths, Answer
In one town, 61% of adults have health insurance. What is the probability that 6 adults selected at random from the town all have health insurance?
of 146 adults selected randomly from one town, 25 of them smoke. Construct a 99% confidence interval for the true percentage of all adults in the town that smoke. Use the given degree of confidence and sample data to construct a confidence interval for the population proportion p. Points: 5 5) Of 146 adults selected randomly from one town, 25 of them smoke. Construct a 99% confidence interval for the true percentage of all adults in the town that smoke....
Use the given degree of confidence and sample data to construct a confidence interval for the population proportion p. Round to three decimal places. Of 89 adults selected randomly from one town, 66 have health insurance. Find a 90% confidence interval for the true proportion of all adults in the town who have health insurance.
Use the given degree of confidence and sample data to construct a confidence interval for the population proportion p. 24) Of 80 adults selected randomly from one town, 64 have health insurance. Find a 90% confidence 24) interval for the true proportion of all adults in the town who have health insurance. A) 0.696 < p0.904 C) 0.712 <p0.888 B) 0.685 <p<0.915 D) 0.726< p<0.874 25) Of 382 randomly selected medical students, 27 said that they planned to work in...
Use the given degree of confidence and sample data to construct a confidence interval for the population proportion p. Round to three decimal palces Of 98 adults selected random from one town, 68 have health insurance Find a 90% confidence interval adults in he own who have heal e proportion on r e a ns rance 0585 < p < 0 802 B. 0.617<p<0.770 A. C. 0603 p<0.785 D. 0.574p<0.814 Use the given degree of confidence and sample data to...
Of 150 patients randomly selected by a hospital, 90 of them said that their health insurance was not adequate. (a) Construct a 99% confidence interval for the proportion of patients who would say that their health insurance was not adequate. (b) Can we say that more than 50% of all patients of the hospital did not have adequate health insurance? Test at the 1% significance level.
Find the indicated probability In one town, 77% of adults have health insurance What is the probability that 10 adults selected at random from the town all have health insurance? Round to the nearest thousandth if necessary
5. In Salinas, 68% of adults have health insurance. If 400 adults were randomly selected. a) Find the probability that at least 230 of them have health insurance. (Use binomial approximation) b) Find the probability that exactly 230 of them have health insurance. (Use binomial approximation)