Mean Variance and Standard Deviation for the Binomial Distribution For Any Discrete Probability Distribution Formulas Mean Variance Standard deviation Binomial Distribution Formulas ID: 573249
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Slide1
Section 5-4
Mean, Variance, and Standard Deviation for the Binomial DistributionSlide2
For Any Discrete Probability
Distribution: Formulas
Mean VarianceStandard deviation Slide3
Binomial Distribution: Formulas
Mean
µ = n • pVariance σ2 = n •
p • qStandard deviation
Where
n
= number of fixed trials
p
= probability of
success
in one of the
n trialsq = probability of failure in one of the n trialsSlide4
Interpretation of Results
Maximum usual values =
µ + 2σ Minimum usual values = µ – 2σ
It is especially important to interpret results. The
range rule of thumb
suggests that values are unusual if they lie outside of these limits:Slide5
Example 1:
Assume that a procedure yields a binomial distribution with n trials and the probability of success for one trial is p. Use the given values of
n and p to find the mean µ and standard deviation σ. Also, use the range rule of thumb to find the minimum usual value µ – 2σ the maximum usual value µ + 2σ. Random guesses are made for 50 SAT multiple choice questions, so n = 50 and p = 0.2.
µ = np = (50)(0.2) = 10
σ2 =
npq = (50)(0.2)(0.8) = 8; σ = 2.828 minimum usual value
= µ – 2σ = 10 – 2(2.828) = 4.3
maximum usual value µ + 2σ
= 10 + 2(2.828) = 15.7Slide6
Example 2:
Assume that a procedure yields a binomial distribution with n trials and the probability of success for one trial is p. Use the given values of
n and p to find the mean µ and standard deviation σ. Also, use the range rule of thumb to find the minimum usual value µ – 2σ the maximum usual value µ + 2σ. In an analysis of test results from YSORT gender selection method, 152 babies are born and it is assumed that boys and girls are equally likely, so n = 152 and p = 0.5.
µ = np = (152)(0.5)
= 76
σ2 = npq = (152)(0.5)(0.5)
= 38; σ = 6.164
minimum usual value = µ – 2σ = 76 – 2(6.164)
=
63.7
maximum usual value
µ + 2σ = 76 + 2(6.164) = 88.3Slide7
Example 3:
The midterm exam in a nursing course consists of 75 true/false questions. Assume that an unprepared student makes random guesses for each of the answers.a) Find the mean and standard deviation for the number of correct answers for such students.
Let x = the number of correct answers.Binomial problem: n = 75 and p = 0.5µ = np =
(75)(0.5) = 37.5σ2
= npq =
(75)(0.5)(0.5) = 18.75; σ = 4.330 Slide8
b) Would it be unusual for a student to pass this exam by guessing and getting at least 45 correct answers? Why or why not
?minimum usual value = µ – 2
σ = 37.5 – 2(4.33) = 28.8maximum usual value µ + 2σ = 37.5+ 2(4.33) =
46.2No. Since 45 is within the above limits, it would not be unusual for a student to pass by getting at least 45 correct answers.Slide9
Example 4:
Mars, Inc. claims that 16% of its M&M plain candies are green. A sample of 100 M&Ms is randomly selected.a) Find the mean and standard deviation for the numbers of green M&Ms in such groups of 100.
Let x = the number of green M&Ms.Binomial problem: n = 100 and p = 0.16µ =
np = (100)(0.16) = 16
σ2 = npq
= (100)(0.16)(0.84) = 13.44; σ =
3.666 Slide10
b) Data set 18 in Appendix B consists of a random sample of 100 M&Ms in which 19 are green. Is this result unusual? Does it seem that the claimed rate of 16% is wrong
?minimum usual value = µ
– 2σ = 16 – 2(3.666) = 8.7maximum usual value µ + 2σ = 16 + 2(3.666) = 23.3
No. Since 19 is within the above limits, it would not be unusual for 100 M&Ms to include 19 green ones. This is not evidence that the claimed rate of 16% is wrong.Slide11
Example 5:
A headline in USA Today states that “most stay at first jobs less than 2 years.” That headline is based on an Experience.com poll of 320 college graduates. Among those polled, 78% stayed at their first full-time job less than 2 years.
a) Assuming that 50% is the true percentage of graduates who stay at their first job less than two years, find the mean and standard deviation of the numbers of such graduates in randomly selected groups of 320 graduates.Let x = the number who stay at their first job less than two years.Binomial problem: n = 320 and p
= 0.5µ = np =
(320)(0.5) = 160
σ2 = npq =
(320)(0.5)(0.5) = 80; σ = 8.944Slide12
b) Assuming that the 50% rate in part (a) is correct, find the range of usual values for the number of graduates among 320 who stay at their first job less than two years.
minimum usual value = µ – 2
σ = 160 – 2(8.944) = 142.1maximum usual value µ + 2σ = 160 + 2(8.944) = 177.9
c) Find the actual number of surveyed graduates who stayed at their first job less than two years. Use the range values from part (b) to determine whether that number is unusual. Does the result suggest that the headline is not justified?x = 0.78(320) = 250. Since 250 is not within the above limits, it would be unusual for 320 graduates to include 250 persons who stayed at their first job less than two years is the true proportion were 50%. Since 250 is greater than the above limits, the true proportion is most likely greater than 50%. The result suggests that the headline is justified.Slide13Slide14Slide15