5. Find the 99% confidence interval for the variance and standard deviation of the active ingredient...

Find the 99% confidence interval for the variance and standard deviation of the active ingredient in...

Find the 99% confidence interval for the variance and standard deviation of the active ingredient in a 500 mg pill if the sample size is 25 and the variance is 4 mg. Assume the variable is normally distributed

3. For another machine part with standard deviation of .01 mm, how large of a sample...

3. For another machine part with standard deviation of .01 mm, how large of a sample would be necessary to estimate the mean within 0.001 mm at a confidence level of 99%.( 4. A sample of 100 people found that 56 of them intend to vote for a particular candidate. a. Find the 95% confidence interval of the true percentage who intend to vote for the candidate. b. Based upon the above survey, what is the probability that the candidate...

Find the 90% confidence interval for the variance and standard deviation for the lifetimes of inexpensive...

Find the 90% confidence interval for the variance and standard deviation for the lifetimes of inexpensive wristwatches if a sample of 24 watches has a standard deviation of 4.8 months. Assume the variable is normally distributed.

We have these hypotheses: H0: the amount of active ingredient in a pharmaceutical pill is 5...

We have these hypotheses: H0: the amount of active ingredient in a pharmaceutical pill is 5 mg H1: the amount is below 5 mg We can take a random sample of 40 such pills and find the amount of active ingredient in them, and let the sample average be x-bar. We also know that the standard deviation of the amount of active ingredient is 0.3 mg. If H0 is right, what is the (approximate) distribution of ( x-bar minus 5)...

A certain medication is supposed to contain 350 mg of the active ingredient per pill. It...

A certain medication is supposed to contain 350 mg of the active ingredient per pill. It is known from previous work that this content is normally distributed with a standard deviation of 3.5 mg. Suppose a random sample of 5 pills are taken, and the average content is 346.4 mg. Is the mean pill content not 350 mg? a) For this example, if we were to test our hypothesis at the level a= 0.01 what would our conclusion be ?...

Find the 90% confidence interval for the variance and standard deviation for the price in dollars...

Find the 90% confidence interval for the variance and standard deviation for the price in dollars of an adult single-day ski lift ticket. Assume the data is normally distributed. 59        54        53        52        51 39        49        46        49        48

A certain cold medication must contain the amount of the active ingredient as 25 mg per...

A certain cold medication must contain the amount of the active ingredient as 25 mg per dose to be effective. If the medication contains more than 25 mg per dose, it’s dangerous to health. If it is less than 25 mg per dose, the medication is not effective. A random sample of 75 doses was taken to a lab and analyzed to determine the actual amounts of the active ingredient in each of these 75 doses. They found 24.82 mg...

A certain medication is supposed to contain 350 mg of the active ingredient per pill. It...

A certain medication is supposed to contain 350 mg of the active ingredient per pill. It is known from previous work that this content is normally distributed with a standard deviation of 3.5 mg. Suppose a random sample of 5 pills are taken, and the average content is 346.4 mg. a) What would our conclusion be if we test H0 : u = 344 , H1 : u not equal to 344 at the level a = 0.05 ? b)...

Find the 98% confidence intervals for the variance and standard deviation of the ages of seniors...

Find the 98% confidence intervals for the variance and standard deviation of the ages of seniors at Oak Park College if a random sample of 28 students has a standard deviation of 2.4 years. Assume the variable is normally distributed. Use the chi-square distribution table to find any chi-square values to three decimal places. Round the final answers to one decimal place.  < σ2 < < σ <

Use the standard normal distribution or the​ t-distribution to construct a 99​% confidence interval for the...

Use the standard normal distribution or the​ t-distribution to construct a 99​% confidence interval for the population mean. Justify your decision. If neither distribution can be​ used, explain why. Interpret the results. In a random sample of 13 mortgage​ institutions, the mean interest rate was 3.59​% and the standard deviation was 0.42​%. Assume the interest rates are normally distributed. Select the correct choice below​ and, if​ necessary, fill in any answer boxes to complete your choice. A. The 99​% confidence...