A random sample of 500 residents in the 95825 zip code showed that 77 of them...

In a random sample of 500 light bulbs, 150 of them burned out in less than...

In a random sample of 500 light bulbs, 150 of them burned out in less than 1000 hours. For those light bulbs: Estimate the value of the population proportion. (Round your answers to 3 decimal places.) Develop a 90% confidence interval for the population proportion. (Round your answers to 3 decimal places.)

A random sample of 322 medical doctors showed that 164 had a solo practice. (a) Let...

A random sample of 322 medical doctors showed that 164 had a solo practice. (a) Let p represent the proportion of all medical doctors who have a solo practice. Find a point estimate for p. (Use 3 decimal places.) (b) Find a 90% confidence interval for p. (Use 3 decimal places.) lower limit upper limit Give a brief explanation of the meaning of the interval. 90% of the confidence intervals created using this method would include the true proportion of...

A random sample of 322 medical doctors showed that 174 had a solo practice. (a) Let...

A random sample of 322 medical doctors showed that 174 had a solo practice. (a) Let p represent the proportion of all medical doctors who have a solo practice. Find a point estimate for p. (Use 3 decimal places.) (b) Find a 98% confidence interval for p. (Use 3 decimal places.) lower limit upper limit Give a brief explanation of the meaning of the interval. What is the margin of error based on a 98% confidence interval? (Use 3 decimal...

In a random sample of 88 ears of corn, farmer Carl finds that 14 of them...

In a random sample of 88 ears of corn, farmer Carl finds that 14 of them have worms. He wants to find the 90% confidence interval for the proportion of all his corn that has worms. (a) What is the point estimate for the proportion of all of Carl's corn that has worms? Round your answer to 3 decimal places. (b) Construct the 90% confidence interval for the proportion of all of Carl's corn that has worms. Round your answers...

Corn: In a random sample of 84 ears of corn, farmer Carl finds that 7 of...

Corn: In a random sample of 84 ears of corn, farmer Carl finds that 7 of them have worms. He wants to find the 90% confidence interval for the proportion of all his corn that has worms. (a) What is the point estimate for the proportion of all of Carl's corn that has worms? Round your answer to 3 decimal places. ____ (b) What is the critical value of z (denoted zα/2) for a 90% confidence interval? Use the value...

A random sample of 16 pharmacy customers showed the waiting times below (in minutes). 20, 27,...

A random sample of 16 pharmacy customers showed the waiting times below (in minutes). 20, 27, 24, 23, 19, 21, 18, 17 22, 15, 18, 32, 16, 20, 19, 19 Find a 90 percent confidence interval for μ, assuming that the sample is from a normal population. (Round your standard deviation answer to 4 decimal places and t-value to 3 decimal places. Round your answers to 3 decimal places.) The 90% confidence interval _____ to _____

A random sample of 336 medical doctors showed that 160 had a solo practice. (a) Let...

A random sample of 336 medical doctors showed that 160 had a solo practice. (a) Let p represent the proportion of all medical doctors who have a solo practice. Find a point estimate for p. (Use 3 decimal places.) ------------ (b) Find a 99% confidence interval for p. (Use 3 decimal places.) lower limit       upper limit Give a brief explanation of the meaning of the interval. 1% of the confidence intervals created using this method would include the...

A researcher took a random sample of 12 two-slice toasters and found an average price of...

A researcher took a random sample of 12 two-slice toasters and found an average price of $53.10 with a standard deviation of $12.90. Assuming we have Normal data, construct a 90% confidence interval for the mean price for two-slice toasters. Also find the margin of error. Round your answers to 2 decimal places.

A random sample of 51 charge sales showed a sample standard deviation of $47. A 90%...

A random sample of 51 charge sales showed a sample standard deviation of $47. A 90% confidence interval estimate of the population standard deviation is (Round your answers to 2 decimal places.)

In a simple random sample of 500 freshman students, 276 of them live on campus. You...

In a simple random sample of 500 freshman students, 276 of them live on campus. You want to claim that majority of college freshman students in US live on campus. A) Are the assumptions for making a 95% confidence interval for the true proportion of all college freshman students in the United States who live on campus satisfied? yes/no? B) What is the sample proportion? C.) A 95% confidence interval for the actual proportion of college freshman students in the...