.

.

Wednesday, November 27, 2013

Student Discipline

STAT 500 Homework 5 Solutions Problem 1 A major airline claims that the majority of its schedule relief valves at the Atlanta drome are within 15 proceeding of scheduled arrival. If the flight new-fashioned arrival times are norm whollyy distributed with close of 12.5 legal proceeding with a standard deviation of 5.1 minutes: A. What division of planes where between 12.5 and 19.6 minutes late? wait on: P(12.5 ? X ? 19.6) = 0.4177, z = (19.6 -12.5)/5.1 = 1.39, check the Standard Normal plank for the result. B. What plowshare of planes were slight than 15 minutes late? suffice: Since z = (15 - 12.5)/5.1 = 0.49, P(X < 15) = P(Z < 0.49) = 0.6879 C. What percentage of planes were more than 30 minutes late? Answer: Since z = (30 - 12.5)/5.1 = 3.43, P(X > 30) = P(Z > 3.43) = 0.0003, from Standard Normal table D. 75% of the planes were less than how many minutes late? Answer: Since z = 0.675 = (X - 12.5)/5.1, X - 12.5 = 0.675(5 .1), so X = 12.5 + 0.675(5.1), X = 15.94 minutes. Problem 2 The packaging process in a breakfast cereal company has been adjusted so that an middling of 13.0 oz of cereal is located in each package. Of course, not all packages have exactly 13.0 oz because of random sources of variability. The standard deviation of the existent net lighten weight is 0.
Ordercustompaper.com is a professional essay writing service at which you can buy essays on any topics and disciplines! All custom essays are written by professional writers!
1 oz, and the distribution of weights is known to follow the titulary hazard distribution. A. Determine the opportunity that a randomly elect package will contain between 10.0 and 13.2 oz of cereal and amplify the parity of atrial auricle under t he normal coil which is associated with thi! s probability value. Answer: Since z = (13.2 13.0)/0.1 = 2.0, P(13.0 < X < 13.2) = P(0 < Z < 2.0) = 0.4772 B. What is the probability that the weight of the cereal will exceed 13.25 oz? Illustrate the proportion of ear under the normal curve which is relevant tolerate this case Answer: Since z = (13.25 13.0)/0.1 = 2.5, P(X > 13.25) = P(Z > 2.5) = 0.0062 C. What is the...If you want to get a full essay, browse it on our website: OrderCustomPaper.com

If you want to get a full essay, visit our page: write my paper
Posted by at

No comments:

Post a Comment

Subscribe to: Post Comments (Atom)