A sample of 1936 smokers showed mean daily cigarette consumption of 27 cigarettes, and. standard deviation...

Cigarette Smoking A researcher found that a cigarette smoker smokes on average 31 cigarettes a day....

Cigarette Smoking A researcher found that a cigarette smoker smokes on average 31 cigarettes a day. She feels that this average is too high. She selected a random sample of 10 smokers and found that the mean number of cigarettes they smoked per day was 28. The sample standard deviation was 2.7. At a=0.05, is there enough evidence to support her claim? Assume that the population is approximately normally distributed. Use the P-value method and tables. Compute the test value....

A research firm conducted a survey to determine the mean amount steady smokers spend on cigarettes...

A research firm conducted a survey to determine the mean amount steady smokers spend on cigarettes during a week. They found the distribution of amounts spent per week followed the normal distribution with a standard deviation of $4. A sample of 64 steady smokers revealed that the mean is $25? What is the 99% confidence interval estimate of µ? Interpret the confidence interval you constructed above.

A research firm conducted a survey to determine the mean amount steady smokers spend on cigarettes...

A research firm conducted a survey to determine the mean amount steady smokers spend on cigarettes during a week. They found the distribution of amounts spent per week followed the normal distribution with a population standard deviation of $5. A sample of 64 steady smokers revealed that   X¯¯¯=$20X¯=$20 . a. What is the 95% confidence interval estimate of μμ  ? (Round your answers to 3 decimal places.)   Confidence interval is between $  and $  .

A school psychologist wishes to determine whether a new antismoking film actually reduces the daily consumption...

A school psychologist wishes to determine whether a new antismoking film actually reduces the daily consumption of cigarettes by teenage smokers. The mean daily cigarette consumption is calculated for each of eight teenage smokers during the month before and the month after the fi lm presentation, with the following results: (Note: When deciding on the form of the alternative hypothesis, H 1 , remember that a positive difference score ( D 5 X 1 2 X 2 ) reflects a...

1. A cigarette manufacturer claims that one-eighth of the US adult population smokes cigarettes. In a...

1. A cigarette manufacturer claims that one-eighth of the US adult population smokes cigarettes. In a random sample of 100 adults, 5 are cigarette smokers. Test the manufacturer's claim at alpha= 0.05.  (critical values of z are ± 1.96). 2. A local telephone company claims that the average length of a phone call is 8 minutes. In a random sample of 58 phone calls, the sample mean was 7.8 minutes and the standard deviation was 0.5 minutes. Is there enough evidence...

A particular brand of cigarettes has a mean nicotine content of 15.2 mg with standard deviation...

A particular brand of cigarettes has a mean nicotine content of 15.2 mg with standard deviation of 1.6mg. a)What percent of cigarettes has a mean nicotine content less than 15mg? b) What is the probability that a random sample of 20 of these cigarettes has a mean nicotine content of more than 16 mg? c)What is a mean nicotine content for lowest 3% of all cigarettes? d) What is the probability randomly chosen cigarette has a nicotine content greater than...

In a random sample of 120 cigarette smokers who were assigned to use vaporizer, 34 reported...

In a random sample of 120 cigarette smokers who were assigned to use vaporizer, 34 reported that they quit smoking after 10 weeks. a) Give a point estimate, ?′, for the proportion of cigarette smokers who quit smoking after 10 weeks of using vaporizer b) Construct a 99% confidence interval for the point estimate you determined in part a.

A sample of 27 elements produced a mean of 124 and a standard deviation of 16....

A sample of 27 elements produced a mean of 124 and a standard deviation of 16. Assuming that the population has a normal distribution with unknown population standard deviation, the 98% confidence interval for the population mean is: a. 115.50 and 132.50 b. 117.50 and 130.50 c. 114.25 and 133.75 d. 116.37 and 131.63

The U.S. Daily Industry want to estimate the mean yearly mild consumption. A sample of 16...

The U.S. Daily Industry want to estimate the mean yearly mild consumption. A sample of 16 people reveals the mean yearly consumption to be 60 gallons with a standard deviation of 20 gallons. a. What is the value of the population mean? What is the best estimate of this value? b. Explain why we need to use t distribution. c. For a 90 percent confidence interval, what is the value of t? d. Develop the 90 percent confidence interval for...

If a random sample of 50 non – smokers have a mean life of 76 years...

If a random sample of 50 non – smokers have a mean life of 76 years with a standard deviation of 8 years, and a random sample of 65 smokers live 68 years with a standard deviation of 9 years, What is the point estimate for the difference of the population means? Find a 95% confidence interval for the difference of mean lifetime of non –smokers and smokers.