A survey of 185 randomly selected homeowners found that they spend a mean of $67 per...

A survey of 100 randomly selected Michigan homeowners finds that they spend a mean of $67...

A survey of 100 randomly selected Michigan homeowners finds that they spend a mean of $67 per month on home maintenance. In an independent survey, 100 randomly selected Florida homeowners find that they spend a mean of $75 per month on home maintenance. Construct a 99% confidence interval for the true difference in the mean amounts of money spent per month on home maintenance for the two states. Assume that the population standard deviation is $14 per month for Michigan...

A survey of 90 randomly selected homeowners finds that they spend a mean of $66 per...

A survey of 90 randomly selected homeowners finds that they spend a mean of $66 per month on home maintenance. Assume that the population standard deviation is $13 per month. Construct and interpret a 95% confidence interval for the mean amount of money spent per month on home maintenance by all homeowners.

A survey of 87 randomly selected homeowners finds that they spend a mean of $65 per...

A survey of 87 randomly selected homeowners finds that they spend a mean of $65 per month on home maintenance. Assume that the population standard deviation is $13 per month. Construct and interpret a 97% confidence interval for the mean amount of money spent per month on home maintenance by all homeowners.

A survey of 100 randomly selected Michigan residents finds that the they spend a mean of...

A survey of 100 randomly selected Michigan residents finds that the they spend a mean of $21 per month on going to the movies. An independent study of a 100 randomly selected California residents find that they spend a mean of $46 per month on going to the movies. Assume that the population standard deviation for the Michigan residents is $5 per month and that the population standard deviation for the California residents is $23 per month. Answer the following...

A survey of 25 randomly selected customers found the ages shown (in years). The mean is...

A survey of 25 randomly selected customers found the ages shown (in years). The mean is 33.00 years and the standard deviation is 8.74 years. a) Construct a 95% confidence interval for the mean age of all customers, assuming that the assumptions and conditions for the confidence interval have been met. b) How large is the margin of error? c) How would the confidence interval change if you had assumed that the standard deviation was known to be 9.0 years?

A survey of 20 randomly selected adult men showed that the mean time they spend per...

A survey of 20 randomly selected adult men showed that the mean time they spend per week watching sports on television is 9.34 hours with a standard deviation of 1.34 hours. Assuming that the time spent per week watching sports on television by all adult men is (approximately) normally distributed, construct a 90 % confidence interval for the population mean,   μ . Round your answers to two decimal places. Lower bound: Enter your answer; confidence interval, lower bound Upper bound:...

A survey of 25 randomly selected customers found the ages shown​ (in years). The mean is...

A survey of 25 randomly selected customers found the ages shown​ (in years). The mean is 33.16 years and the standard deviation is 9.44 years. ​a) Construct a 80​% confidence interval for the mean age of all​ customers, assuming that the assumptions and conditions for the confidence interval have been met. ​b) How large is the margin of​ error? ​a) What is the confidence​ interval? ​b) What is the margin of​ error?

Data from a survey of 50 randomly selected customers found a mean age of 38.7 years...

Data from a survey of 50 randomly selected customers found a mean age of 38.7 years and the standard deviation was 6.13 years. Given that t* = 2.01, calculate the 95% confidence interval for the mean?    (32.57, 44.83) (34.78, 44.60) (36.96, 40.44) (38.70, 44.83)

A survey of 25 randomly selected customers found the ages shown​ (in years). The mean is...

A survey of 25 randomly selected customers found the ages shown​ (in years). The mean is 32.32years and the standard deviation is 9.77years. ​a) Construct a 80​% confidence interval for the mean age of all​ customers, assuming that the assumptions and conditions for the confidence interval have been met. ​b) How large is the margin of​ error? ​c) How would the confidence interval change if you had assumed that the standard deviation was known to be 10.0 years?

A survey of 25 randomly selected customers found the ages shown​ (in years). The mean is...

A survey of 25 randomly selected customers found the ages shown​ (in years). The mean is 31.04 years and the standard deviation is 9.00 years.​ a) Construct a 99​% confidence interval for the mean age of all​ customers, assuming that the assumptions and conditions for the confidence interval have been met. ​b) How large is the margin of​ error? ​c) How would the confidence interval change if you had assumed that the standard deviation was known to be 9.0 ​years?