Chapter 6: Standard Scores and the Normal Curve Normal distributions show up all over the place.
Mar 23, 2016
Chapter 6: Standard Scores and the Normal Curve
Normal distributions show up all over the place.
The standard normal distribution
The standard normal distribution is a continuous distribution.It has a mean of 0 and a standard deviation of 1The total area under the curve is equal to 1
-4 -3 -2 -1 0 1 2 3 4z score
2
2
2
x
ey
40 45 50 55 60 65 70 75 80 85 90 95 100Preferred outdoor temperature
-4 -3 -2 -1 0 1 2 3 4z-score
Xz
zX
If we assume that our population is distributed normally, then all we need is the population mean () and standard deviation () to convert to z-scores for the standard normal distribution. We can then find areas under the curve using Table A.
Population (X) Standard normal (z)
All normal distributions can be converted to a ‘standard normal’ by converting to z scores. We can then look up values in a table in the back of the book (or use a computer).
Example: Suppose the population of heights of U.S. females is normally distributed with a mean of 64 inches with a standard deviation of 2.5 inches. What percent of women are between 61.5 and 66.5 inches?
Answer: 61.5 inches is exactly one standard deviation below the mean, and 66.5 inches is exactly one standard deviation greater than the mean.We learned in Chapter 5 that 68% of scores fall within +/- one standard deviation of the mean, so the answer is 68%
-4 -3 -2 -1 0 1 2 3 4
Rel
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e fre
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z score
68%
Using Table A (page 436) to find the area under the standard normal curve
For any given z score, the table gives you two numbers:
Column 2: area between 0 and z Column 3: area above z
Note that the numbers in columns 2 and 3 always add up to 0.5
z score z score
Example: what is the proportion of area under the standard normal above z=1?
Look up z=1 in table A (page 436), Column 3. The area is .1587, so 15.87% of the area of the curve lies beyond one standard deviations above the mean.
-4 -3 -2 -1 0 1 2 3 4z score
Example: Suppose the population of heights of U.S. females is normally distributed with a mean of 64 inches with a standard deviation of 2.5 inches. What percent of women are taller than 66.5 inches?
Answer: 65.5 inches is 2.5 inches greater than the mean, which is exactly one standard deviation. From the last example, we know that the area beyond z=1 is .1587. 15.87% of women are taller than 65.5 inches.
54 56.5 59 61.5 64 66.5 69 71.5 74Height
-4 -3 -2 -1 0 1 2 3 4z score
15.87% 15.87%
-4 -3 -2 -1 0 1 2 3 4z score
-4 -3 -2 -1 0 1 2 3 4z score
54 56.5 59 61.5 64 66.5 69 71.5 74Height
X
xXz
In general, we can calculate the z-score for 60 inches with our formula:
Example: Suppose the mean height of a U.S. female is 64 inches with a standard deviation of 2.5 inches. What proportion of women are shorter than 5 feet (60 inches)?Answer: Convert the height to a z score:
The area below z=-1.6 is equal to the area above z=1.6. Table A, Column 3: area = .0548. 5.48% of women are shorter than 5 feet.
5.48% 5.48% 5.48%
6.15.26460
X
xXz
40 55 70 85 100 115 130 145 160IQ
Over 140 - Genius or near genius 120 - 140 - Very superior intelligence 110 - 119 - Superior intelligence 90 - 109 - Normal or average intelligence 80 - 89 - Dullness 70 - 79 - Borderline deficiency Under 70 - Definite feeble-mindedness
Example: Most IQ tests are standardized to have a mean of 100 and a standard deviation of 15. If we assume that IQ scores are normally distributed, what percent of the population has ‘very superior intelligence’, or an IQ between 120 and 140?
Answer: The area between 120 and 140 is equal to the area above 120 minus the area above 140. z scores for IQs of 120 and 140 are:
Looking at table A, column 3:the proportion above z1=1.33 is .0918the proportion above z2=2.67 is .0038The difference is .0918-.0038 = .0880. 8.8% of the population has ‘very superior intelligence’
33.115100120
1
X
xXz
67.215100140
2
X
xXz
Xx
xX
X
x
zXXz
Xz
8.80)15)(28.1(100 xx zuX
Example: Again, assume IQ scores are normally distributed with = 100, and = 15. For what IQ does 90% of the population exceed?
Answer: We need to use table A backwards. First we’ll find the z score for which the area beyond z is 0.1. This is a value of z=1.28. This means that the area below z=-1.28 is 0.1, and the area above z=-1.28 is 0.90.Next we’ll convert this z score back to IQ scores. This can be done by reversing the formula that converts from X to z. Solving for X:
Using the new formula:90% of the population has an IQ above 80.8 points
More examples:
The heights of fathers of the 100 students in this class has a mean of 68 inches and a standard deviation of 3.6 inches. If we assume that this sample is normally distributed:
1) Estimate how many fathers are taller than six feet tall (72) inches?
Answer: Find the z value for a height of 72 inches and use column 3
11.16.36872
X
XXz
Table A, column 3: the proportion above z=1.11 is .1335
# fathers: (100)(.1335)= 13.35
Round to the nearest father : 13
57.2 60.8 64.4 68 71.6 75.2 78.8z
area =0.1335
72
More examples:
The heights of fathers of the 100 students in this class has a mean of 68 inches and a standard deviation of 3.6 inches. If we assume that this sample is normally distributed:
2) Estimate how many fathers are shorter than 73 inches.
Answer: Find the z value for a height of 73 inches and use column 2 and add 50%
Table A, Column 2: the proportion between the mean and z=1.39 is .4177.
To find the area below z = 1.38, we need to add another 0.5 to .4177 which gives .9177
#fathers: (100)(.9177)= 91.77Rounds to 92 fathers
39.16.36873
X
XXz
57.2 60.8 64.4 68 71.6 75.2 78.8z
area =0.5
68
area =0.4176
68 73
area = .4177
43.08 53.02 62.96 72.9 82.84 92.78 102.72Temperature (F)
area =0.1775
55 65
More examples:
The preferred outdoor temperature for the 102 students in this class has a mean of 72.9 degrees and a standard deviation of 9.94 degrees. If we assume that this sample is normally distributed:
1 How many students prefer a temperature between 55 and 65 degrees?
Answer: Find the z values for 55 and 65 and use table A, column 3
8.194.99.72551
1
X
xXz
79.094.99.72652
2
X
xXz
To find the area below z1 = -1.8, we find the area above z = 1.8 which is .0359
The area below z2 = -.9, is .2148
Rounding to the nearest student: (0.1789)(102) = 18 students
The area between z1 and z2 is .2148- .0359 = .1789
area = .1789
43.08 53.02 62.96 72.9 82.84 92.78 102.72Temperature (F)
area =0.9
85.64
More examples:
The preferred outdoor temperature for the 102 students in this class has a mean of 72.9 degrees and a standard deviation of 9.94 degrees. If we assume that this sample is normally distributed.
2) For what temperature do 90% of the preferred temperatures fall below?
Answer: Find the z value that corresponds to the top 90% of the standard normal Then find the corresponding temperature using:
xx zuX
Using table A backwards, the z-score for an area of 0.9 is z = 1.28.
Converting to temperature, 72.9+(1.28)(9.94) = 85.6 degrees.