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A survey of 25 randomly selected customers found the ages shown (in years). The mean is 32.32 yea...
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 32.68 years and the standard deviation is 9 47 years a) How many degrees of freedom does the t-statistic have? b) How many degrees of freedom would the t-statistic have if the sample size had been 400? 25 25 22 38 420 25 26 37 34 39 46 37 24 13 45 20 42 17 48 34 32 35 39 40 32 a) The...
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 9.21 years. 47 35 45 21 30 42 49 29 28 35 27 29 45 35 11 34 28 33 44 39 34 25 34 32 18 a) What is the 90% confidence interval for the mean age of all customers assuming that the assumptions and conditions for the confidence interval have been met? b) What is...
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 33.60 years and the standard deviation is 9.52 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 10.0 years?...
Please answer a and b years. a) How many degrees of freedom does the t-statistic have?...
Please answer a and b
years. a) How many degrees of freedom does the t-statistic have? b) How many degrees of freedom would the t-statistic have if the sample size had been 225? A survey of 25 randomly selected customers found the ages shown (in years). The mean is 33.68 years and the standard deviation is 10.5731 27 49 33 48 49 34 35 37 28 21 26 48 38 35 20 27 18 26 10 38 36 44 49...
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 32.28 years and the standard deviation is 9.35 31 21 44 32 34 11 48 42 23 45 39 35 31 28 29 43 34 37 20 44 33 27 24 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...
13 Question Help o A survey of 25 randomly selected customers found the ages shown (in...
13 Question Help o A survey of 25 randomly selected customers found the ages shown (in years). The mean is 32.32 years and the standard deviation is 10.06 years. a) What is the standard error of the mean? b) How would the standard error change if the sample size had been 100 instead of 25? (Assume that the sample standard deviation didn't change.) 36 43 26 28 30 37 39 15 46 41 24 21 47 40 21 37 38...
Question Help O A survey of 25 randomly selected customers found the ages shown in years)....
Question Help O A survey of 25 randomly selected customers found the ages shown in years). The meanis 33 08 years and the standard deviation is 9.53 years a) What is the standard error of the mean? b) How would the standard error change if the sample size had been 400 instead of 257 (Assume that the sample standard deviation didn't change) 24 47 36 29 450 39 45 29 25 23 26 41 36 36 35 41 36 22...
A store owner surveyed 25 randomly selected customers and found the ages shown (in years). The...
A store owner surveyed 25 randomly selected customers and found the ages shown (in years). The mean is 27.8 and the standard deviation is 8.72. The owner wants to know if the mean age of all customers is 32 years old. Use the given information to complete parts a through f 30 19 23 26 23 D 31 30 23 11 50 30 20 29 18 24 29 3740 46 35 26 23 22 27 23 a) What is the...
A survey of 25 randomly selected customers found that their average age was 31.84 years with...
A survey of 25 randomly selected customers found that their average age was 31.84 years with a standard deviation of 9.84 years. What would the critical value t* be for a 95% confidence interval with 99 degrees of freedom? What would the margin of error be for a 95% confidence interval for this data (with the sample size of 25)? Construct a 95% confidence interval for the mean age of all customers for this data (with the sample size of...
years. A survey of 25 randomly selected customers found the ages shown (in years). The mean...
years. A survey of 25 randomly selected customers found the ages shown (in years). The mean is 32.84 years and the standard deviation is 8.84 25 39 43 25 42p a) Construct a 99% confidence interval for the mean age of all customers, assuming that the assumptions and conditions for the confidence 23 28 42 45 31 interval have been met. b) How large is the margin of error? c) How would the confidence interval change if you had assumed...
A survey of 25 randomly selected customers found the ages shown (in years) The mean is 32.68 years and the standard deviation is 9 47 years a) How many degrees of freedom does the t-statistic have? b) How many degrees of freedom would the t-statistic have if the sample size had been 400? 25 25 22 38 420 25 26 37 34 39 46 37 24 13 45 20 42 17 48 34 32 35 39 40 32 a) The...
A survey of 25 randomly selected customers found the ages shown (in years). The mean is 33.60 years and the standard deviation is 9.52 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 10.0 years?...
Please answer a and b
years. a) How many degrees of freedom does the t-statistic have? b) How many degrees of freedom would the t-statistic have if the sample size had been 225? A survey of 25 randomly selected customers found the ages shown (in years). The mean is 33.68 years and the standard deviation is 10.5731 27 49 33 48 49 34 35 37 28 21 26 48 38 35 20 27 18 26 10 38 36 44 49...
A survey of 25 randomly selected customers found the ages shown (in years). The mean is 32.28 years and the standard deviation is 9.35 31 21 44 32 34 11 48 42 23 45 39 35 31 28 29 43 34 37 20 44 33 27 24 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...
13 Question Help o A survey of 25 randomly selected customers found the ages shown (in years). The mean is 32.32 years and the standard deviation is 10.06 years. a) What is the standard error of the mean? b) How would the standard error change if the sample size had been 100 instead of 25? (Assume that the sample standard deviation didn't change.) 36 43 26 28 30 37 39 15 46 41 24 21 47 40 21 37 38...
Question Help O A survey of 25 randomly selected customers found the ages shown in years). The meanis 33 08 years and the standard deviation is 9.53 years a) What is the standard error of the mean? b) How would the standard error change if the sample size had been 400 instead of 257 (Assume that the sample standard deviation didn't change) 24 47 36 29 450 39 45 29 25 23 26 41 36 36 35 41 36 22...
A store owner surveyed 25 randomly selected customers and found the ages shown (in years). The mean is 27.8 and the standard deviation is 8.72. The owner wants to know if the mean age of all customers is 32 years old. Use the given information to complete parts a through f 30 19 23 26 23 D 31 30 23 11 50 30 20 29 18 24 29 3740 46 35 26 23 22 27 23 a) What is the...
years. A survey of 25 randomly selected customers found the ages shown (in years). The mean is 32.84 years and the standard deviation is 8.84 25 39 43 25 42p a) Construct a 99% confidence interval for the mean age of all customers, assuming that the assumptions and conditions for the confidence 23 28 42 45 31 interval have been met. b) How large is the margin of error? c) How would the confidence interval change if you had assumed...
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