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 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 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?

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 32.88 years and the standard deviation is 8.96 years. ​a) Construct a 90​% 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?

In a survey of randomly selected subjects, the mean age of 40 respondents is 36.4 years,...

In a survey of randomly selected subjects, the mean age of 40 respondents is 36.4 years, and the sample standard deviation of all ages is known to be 10.1 years. Construct a 95% confidence interval estimate of the mean age of the population from which the sample was selected.