ELEMENTARY STATISTICS: STEP BY STEP- ALE
ELEMENTARY STATISTICS: STEP BY STEP- ALE
10th Edition
ISBN: 9781266422362
Author: Bluman
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Textbook Question
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Chapter 3.3, Problem 18E

College Room and Board Costs Room and board costs for selected schools are summarized in this distribution. Find the approximate cost of room and board corresponding to each of the following percentiles.

Costs (in dollars) Frequency

3000.5–4000.5

4000.5–5000.5

5000.5–6000.5

6000.5–7000.5

7000.5–8000.5

8000.5–9000.5

9000.5–10,000.5

5

6

18

24

19

8

5

a. 30th percentile

b. 50th percentile

c. 75th percentile

d. 90th percentile

Source: World Almanac.

Using the same data, find the approximate percentile rank of each of the following costs.

e. 5500

f. 7200

g. 6500

h. 8300

a.

Expert Solution
Check Mark
To determine

The 30th percentile of the given data.

Answer to Problem 18E

The 30th percentile of the given data is $5,06.05.

Explanation of Solution

Given info:

Given data is tabulated below:

Costs (in dollars) Frequency
3,000.5-4,000.5 5
4,000.5-5,000.5 6
5,000.5-6,000.5 18
6,000.5-7,000.5 24
7,000.5-8,000.5 19
8,000.5-9,000.5 8
9,000.5-10,000.5 5

Calculation:

Make a table as shown, and find the cumulative frequency of each class.

A

Class

B

Frequency( f )

C

Cumulative frequency( cf )

D

Cumulative

cf%

Determine the cumulative frequency of given data and write in column C.

Determine percentage of cumulative frequency and write in column D.

Table for calculating percentiles given below,

A

Class

B

Frequency( f )

C

Cumulative

frequency( cf )

D

Cumulative

cf%

3,000.5-4,000.5 5 5 5.88
4,000.5-5,000.5 6 11 12.94
5,000.5-6,000.5 18 29 34.12
6,000.5-7,000.5 24 53 62.35
7,000.5-8,000.5 19 72 84.71
8,000.5-9,000.5 8 80 94.12
9,000.5-10,000.5 5 85 100
Total 85

Locate the 30th percentile by 30×85100=25.5 observation. So the 30th percentiles group is 5,000.5-6,000.5 containing the 25.5th observation.

Formula to calculate value corresponding percentiles,

P=l+hf(p×n100c)

Where,

  • l is lower limits of the class.
  • h is the width of class.
  • f is frequency of the class.
  • p is percentiles.
  • n is the total number.
  • c is preceding cumulative frequency.

Substitute 5,000.5 for the l and 1,000 for the h and 18 for f and 30 for p and 85 for n and 11 for c ,

P30=5,000.5+1,00018(30×8510011)=5,000.5+1,00018(25.511)=5,000.5+1,00018(14.5)=5,000.5+1,000×14.518

Simplify the equation,

P30=5,000.5+805.56=5,806.05

Thus, the 30th percentile of the data is 5,806.05.

b.

Expert Solution
Check Mark
To determine

The 50th percentiles of the given data.

Answer to Problem 18E

The 50th percentiles of the given data is6563.

Explanation of Solution

Calculation:

Substitute 6,000.5 for the l and 1,000 for the h and 24 for f and 50 for p and 85 for n and 29 for c ,

P50=6,000.5+1,00024(50×8510029)=6,000.5+1,00024(42.529)=6,000.5+1,00024(13.5)=6,000.5+1,000×13.524

Simplify the equation.

P50=6,000.5+562.5=6,563

Thus the 50th percentile of the data is 6,563.

c.

Expert Solution
Check Mark
To determine

The 75th percentile of the given data.

Answer to Problem 18E

The 75th percentile of the given data is 7,566.29.

Explanation of Solution

Calculation:

Substitute 7,000.5 for the l and 1,000 for the h and 19 for f and 75 for p and 85 for n and 53 for c .

P75=7,000.5+1,00019(75×8510053)=7,000.5+1,00019(63.7553)=7,000.5+1,00019(10.75)=7,000.5+1,000×10.7519

Simplify the equation,

P75=7,000.5+565.79=7,566.29

Thus, the 75th percentile of the data is 7,566.29.

d.

Expert Solution
Check Mark
To determine

The 90th percentile of the given data.

Answer to Problem 18E

The 90th percentile of the given data is 8,563.

Explanation of Solution

Calculation:

Substitute 8,000.5 for the l and 1,000 for the h and 8 for f and 90 for p and 85 for n and 72 for c .

P90=8,000.5+1,0008(90×8510072)=8,000.5+1,0008(76.572)=8,000.5+1,0008(4.5)=8,000.5+1,000×4.58

Simplify the equation,

P90=8,000.5+562.5=8,563

Thus the 90th percentile of the data is 8,563.

e.

Expert Solution
Check Mark
To determine

The percentiles rank corresponding to value 5500.

Answer to Problem 18E

The 24th percentile rank corresponding to the value is 5,500.

Explanation of Solution

Calculation:

Substitute 5,000.5 for the l and 10,00 for the h and 18 for f and 5500 for P and 85 for n and 11 for c .

5,500=5,000.5+1,00018(p×8510011)=5000.5+1,00018(0.85p11)=5,000.5+55.56(0.85p11)=5,000.5+47.23p611.16

Simplify the equation,

47.23p=55004389.34p=1110.6647.23=23.524

Thus the percentiles rank for the cost of 5500 is 24th percentiles.

f.

Expert Solution
Check Mark
To determine

The percentiles rank corresponding to value 7200.

Answer to Problem 18E

The 67th percentiles rank corresponding to the value 7200.

Explanation of Solution

Calculation:

Make a table as shown, and find the cumulative frequency of each class.

A

Class

B

Frequency( f )

C

Cumulative frequency( cf )

D

Cumulative

cf%

Determine the cumulative frequency of given data and write in column C.

Determine percentage of cumulative frequency and write in column D.

Table for calculating percentiles given below,

A

Class

B

Frequency( f )

C

Cumulative frequency( cf )

D

Cumulative

cf%

3000.5-4000.5 5 5 5.88
4000.5-5000.5 6 11 12.94
5000.5-6000.5 18 29 34.12
6000.5-7000.5 24 53 62.35
7000.5-8000.5 19 72 84.71
8000.5-9000.5 8 80 94.12
9000.5-10000.5 5 85 100
85

The cost 7200 lie in the interval 7000.5-8000.5

Substitute 7000.5 for the l and 1000 for the h and 19 for f and 7200 for P and 85 for n and 53 for c .

7200=7000.5+100019(p×8510053)=7000.5+100019(0.85p53)=7000.5+52.63(0.85p53)=7000.5+44.74p2789.39

Simplify the equation,

44.74p=72004211.11p=2988.8944.74=66.867(roundingup)

Thus the percentiles rank for the cost of 7200 is 67th percentiles.

g.

Expert Solution
Check Mark
To determine

The percentiles rank corresponding to value 6500.

Answer to Problem 18E

The 48th percentiles rank corresponding to the value 6500.

Explanation of Solution

Calculation:

Make a table as shown, and find the cumulative frequency of each class.

A

Class

B

Frequency( f )

C

Cumulative frequency( cf )

D

Cumulative

cf%

Determine the cumulative frequency of given data and write in column C.

Determine percentage of cumulative frequency and write in column D.

Table for calculating percentiles given below,

A

Class

B

Frequency( f )

C

Cumulative frequency( cf )

D

Cumulative

cf%

3000.5-4000.5 5 5 5.88
4000.5-5000.5 6 11 12.94
5000.5-6000.5 18 29 34.12
6000.5-7000.5 24 53 62.35
7000.5-8000.5 19 72 84.71
8000.5-9000.5 8 80 94.12
9000.5-10000.5 5 85 100
Total 85

The cost 6500 lie in the interval 6000.5-7000.5.

Substitute 6000.5 for the l and 1000 for the h and 24 for f and 6500 for P and 85 for n and 29 for c ,

6500=6000.5+100024(p×8510029)=6000.5+100024(0.85p29)=6000.5+41.67(0.85p29)=8000.5+435.42p1208.43

Simplify the equation,

35.42p=65004792.07p=1707.9335.42=48.2248th

Thus the percentiles rank for the cost of 6500 is 48th percentiles.

h.

Expert Solution
Check Mark
To determine

The percentiles rank corresponding to value 8300.

Answer to Problem 18E

The 88th percentiles rank corresponding to the value 8300.

Explanation of Solution

Calculation:

Make a table as shown, and find the cumulative frequency of each class.

A

Class

B

Frequency( f )

C

Cumulative frequency( cf )

D

Cumulative

cf%

Determine the cumulative frequency of given data and write in column C.

Determine percentage of cumulative frequency and write in column D.

Table for calculating percentiles given below,

A

Class

B

Frequency( f )

C

Cumulative frequency( cf )

D

Cumulative

cf%

3000.5-4000.5 5 5 5.88
4000.5-5000.5 6 11 12.94
5000.5-6000.5 18 29 34.12
6000.5-7000.5 24 53 62.35
7000.5-8000.5 19 72 84.71
8000.5-9000.5 8 80 94.12
9000.5-10000.5 5 85 100
85

The cost 8300 lies in the interval 8000.5-9000.5

Substitute 8000.5 for the l and 1000 for the h and 8 for f and 8300 for P and 85 for n and 72 for c .

8300=8000.5+10008(p×8510072)=8000.5+10008(0.85p72)=8000.5+125(0.85p72)=8000.5+106.25p9000

Simplify the equation,

106.25p=83008000.5+9000p=9299.5106.25=87.588

Thus the percentiles rank for the cost of 8300 is 88th percentile.

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Chapter 3 Solutions

ELEMENTARY STATISTICS: STEP BY STEP- ALE

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