A survey of 50 young professionals found that they spent an average of $20.46 when dining...

1) A survey of 50 young professionals found that they spent an average of ​$19.95 when...

1) A survey of 50 young professionals found that they spent an average of ​$19.95 when dining​ out, with a standard deviation of ​$13.06. Can you conclude statistically that the population mean is greater than ​$26​? Use a​ 95% confidence interval. The​ 95% confidence interval is _____. As ​$26 is _____ (within/above/below the limit) of the confidence​ interval, we _____ (can/cannot) conclude that the population mean is greater than $26 2) A survey of 230 young professionals found that 1/8...

In a sample of 49 individuals, it is found that the average amount spent on groceries...

In a sample of 49 individuals, it is found that the average amount spent on groceries per month is $255. From previous studies, it is assumed that the population standard deviation is $46. Find a 95% confidence interval for the average amount of money spent on groceries per month, and interpret your result. Use ??=1.96 for 95% confidence, and round your answers to 2 decimal places. The confidence interval is: $ to $ This means: Select your answer from one...

In a sample of 40 individuals, it is found that the average amount spent on groceries...

In a sample of 40 individuals, it is found that the average amount spent on groceries per month is $255. From previous studies, it is assumed that the population standard deviation is $46. Find a 95% confidence interval for the average amount of money spent on groceries per month, and interpret your result. Use ??=1.96 for 95% confidence, and round your answers to 2 decimal places. The confidence interval is: $________ to $________ This means: Select your answer from one...

A survey of 25 randomly sampled lawyers found that they averaged 65 billable hours a week,...

A survey of 25 randomly sampled lawyers found that they averaged 65 billable hours a week, with a standard deviation of 6.25 hours. Develop a 99% confidence interval for the population mean for billable hours. Would it be reasonable to conclude that the population mean is 60 hours? How can you tell? How large of a sample is necessary to assess the population mean with an allowable error of 1 hour at 95% confidence?

R1.23: The chief operating officer wants to know if the 17th quarter’s customer satisfaction survey result,...

R1.23: The chief operating officer wants to know if the 17th quarter’s customer satisfaction survey result, 88, “is a statistically significant improvement of the mean at the 95% confidence level and why?” The following facts apply: The data are collected by a proper survey method and are normally distributed and two-tailed. The mean satisfaction result for the last 16 quarters is 85.8. The standard deviation of the population is 3.06. The standard error calculated by the data analysis software is...

In a survey of collage students, it was found that the amount of time spent on...

In a survey of collage students, it was found that the amount of time spent on reading books per week was normally distributed with a mean of 32 minutes. Assume the distribution of weekly reading time follows the normal distribution with a population standard deviation of 2 minutes. Suppose we select a sample of 20 high school students. 1)  What is the standard error of the mean time? 2)What percent of the sample means will be greater than 32.50 minutes? 3)What...

1. A survey of 30 emergency room patients found that the average waiting time for treatment...

1. A survey of 30 emergency room patients found that the average waiting time for treatment was 174.3 minutes. Assuming that the population standard deviation is 46.5 minutes, find the best point estimate of the population mean. Construct and interpret the 99% confidence interval of the population mean.

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)

Newspaper Reading Times A survey taken several years ago found that the average time a person...

Newspaper Reading Times A survey taken several years ago found that the average time a person spent reading the local daily newspaper was 10.8 minutes. The standard deviation of the population was 3 minutes. To see whether the average time had changed since the newspaper's format was revised, the newspaper editor surveyed 31 individuals. The average time that the 31 people spent reading the paper was 12.5 minutes. At =α0.02, is there a change in the average time an individual...

A survey collected data on annual credit card charges in seven different categories of expenditures: transportation,...

A survey collected data on annual credit card charges in seven different categories of expenditures: transportation, groceries, dining out, household expenses, home furnishings, apparel, and entertainment. Using data from a sample of 42 credit card accounts, assume that each account was used to identify the annual credit card charges for groceries (population 1) and the annual credit card charges for dining out (population 2). Using the difference data, with population 1 − population 2, the sample mean difference was d...