The probability that a random smoker will develop a sever lung condition during his or her lifetime is 0.3. we will choose a random sample of 120 smokers and let x be the number of these smokers that will develop a severe lung condition.

a. in our sample, find the mean and standard deviation of the number of smokers that will develop a sever lung condition. give your answers to two decimal plac

Question

Forbes

Mathematics

31 January, 08:54

The probability that a random smoker will develop a sever lung condition during his or her lifetime is 0.3. we will choose a random sample of 120 smokers and let x be the number of these smokers that will develop a severe lung condition.

a. in our sample, find the mean and standard deviation of the number of smokers that will develop a sever lung condition. give your answers to two decimal plac

+5

Answers (1)

Know the Answer?

Damian Delacruz · Answer 1

The mean is 36 and the standard deviation is 5.02.

The mean is given by

μ = np = 120*0.3 = 36.

The standard deviation is given by

σ = √ (n*p * (1-p)) = √ (120*0.3*0.7) = √25.2 = 5.02.