UNDERSTANDING BASIC STAT LL BUND >A< F
UNDERSTANDING BASIC STAT LL BUND >A< F
7th Edition
ISBN: 9781337372763
Author: BRASE
Publisher: Cengage Learning
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Textbook Question
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Chapter 2.1, Problem 22P

Decimal Data: Batting Averages The following data represent baseball batting averages for a random sample of National League players neat the end of the baseball season. the data are from the baseball statistics section of the Denver Post.

0.194 0.258 0.190 0.291 0.158 0.295 0.261 0.250 0.181
0.125 0.107 0.260 0.309 0.309 0.276 0.287 0.317 0.252
0.215 0.250 0.246 0.260 0.265 0.182 0.113 0.200

(a) Multiply each data value by 1000 to “clear” the decimals.

(b) Use the standard procedares of this section to make a frequency table and histogram with your whole-number data. Use five classes.

(c) Divide class limits, class boundaries, and class midpoints by 1000 to get back to your original dat.

(a)

Expert Solution
Check Mark
To determine

To find: The decimal data that are multiply with 1000 for each value in the data..

Answer to Problem 22P

Solution: The data multiply with 1000 for each value in the data is as follows:

Data Data*100 Data Data*100
0.194 194 0.309 309
0.258 258 0.276 276
0.19 190 0.287 287
0.291 291 0.317 317
0.158 158 0.252 252
0.295 295 0.215 215
0.261 261 0.25 250
0.25 250 0.246 246
0.181 181 0.26 260
0.125 125 0.265 265
0.107 107 0.182 182
0.26 260 0.113 113
0.309 309 0.2 200

Explanation of Solution

Calculation: The data represent baseball batting averages for a random sample of National League players near the end of the baseball season and there are 26 values in the data set. To find the whole number data by multiplying 1000 is obtained as follows:

Data Data*100 Data Data*100
0.194 0.194×1000=194 0.309 309
0.258 0.258×1000=258 0.276 276
0.19 0.190×1000=190 0.287 287
0.291 291 0.317 317
0.158 158 0.252 252
0.295 295 0.215 215
0.261 261 0.25 250
0.25 250 0.246 246
0.181 181 0.26 260
0.125 125 0.265 265
0.107 107 0.182 182
0.26 260 0.113 113
0.309 309 0.2 200

Interpretation: Hence, the data multiply with 1000 is as follows:

Data Data*100 Data Data*100
0.194 194 0.309 309
0.258 258 0.276 276
0.19 190 0.287 287
0.291 291 0.317 317
0.158 158 0.252 252
0.295 295 0.215 215
0.261 261 0.25 250
0.25 250 0.246 246
0.181 181 0.26 260
0.125 125 0.265 265
0.107 107 0.182 182
0.26 260 0.113 113
0.309 309 0.2 200

(b)

Expert Solution
Check Mark
To determine

To find: The standard frequency table for the data set..

Answer to Problem 22P

Solution: The complete frequency table is as:

Class limits Class boundaries Midpoints Freq Relative freq Cumulative freq
46-85 45.5-85.5 65.5 4 0.12 4
86-125 85.5-125.5 105.5 5 0.16 9
126-165 125.5-165.5 145.5 10 0.31 19
166-205 165.5-205.5 185.5 5 0.16 24
206-245 205.5-245.5 225.5 5 0.16 29
246-285 245.5-285.5 265.5 3 0.09 32

Explanation of Solution

Calculation: To find the class width for the whole data of 26 values, it is observed that largest value of the data set is 317 and the smallest value is 107 in the data. Using 5 classes, the class width calculated in the following way:

Class width=Largest data value  smallest data valueDesired number of classes

Class width=3171075=4243

The value is round up to the nearest whole number. Hence, the class width of the data set is 43. The class width for the data is 43 and the lowest data value (107) will be the lower class limit of the first class. Because the class width is 43, it must add 43 to the lowest class limit in the first class to find the lowest class limit in the second class. There are 5 desired classes. Hence, the class limits are 107–149, 150–192, 193–235, 236–278, and 279–321. Now, to find the class boundaries subtract 0.5 from lower limit of every class and add 0.5 to the upper limit of the every class interval. Hence, the class boundaries are 106.5–149.5, 149.5–192.5, 192.5–235.5, 235.5-278.5, and 278.5-321.5.

Next to find the midpoint of the class is calculated by using formula,

Midpoint=Lower class limit + Upper class limit2

Midpoint of first class is calculated as:

Midpoint=106.5+ 149.52=128

The frequencies for respective classes are 3, 4, 3, 10, and 6.

Relative frequency is calculated by using the formula

Relative frequency=fn=frequencyTotal of all frequencies

The frequency for first class is 3 and total frequencies are 26 so the relative frequency is 326=0.12. Do it same calculation for other class.

The calculated frequency table is as follows:

Class limits Class boundaries Midpoints freq relative freq
107-149 106.5-149.5 128 3 0.12
150-192 149.5-192.5 171 4 0.15
193-235 192.5-235.5 214 3 0.12
236-278 235.5-278.5 257 10 0.38
279-321 278.5-321.5 300 6 0.23

Graph: To construct the histogram by using the MINITAB, the steps are as follows:

Step 1: Enter the class boundaries in C1 and frequency in C2.

Step 2: Go to Graph > Histogram > Simple.

Step 3: Enter C1 in Graph variable then go to Data options > Frequency > C2.

Step 4: Click on OK.

The obtained histogram is

UNDERSTANDING BASIC STAT LL BUND >A< F, Chapter 2.1, Problem 22P

Interpretation: Hence, the complete frequency table is as follows:

Class limits Class boundaries Midpoints Freq Relative freq
107-149 106.5-149.5 128 3 0.12
150-192 149.5-192.5 171 4 0.15
193-235 192.5-235.5 214 3 0.12
236-278 235.5-278.5 257 10 0.38
279-321 278.5-321.5 300 6 0.23

(c)

Expert Solution
Check Mark
To determine

To find: The class limits, class boundaries, and midpoints in the frequency table by dividing 1000..

Answer to Problem 22P

Solution: The frequency table of original data is as follows:

Class limits Class boundaries Midpoints
0.107-0.149 0.1065-0.1495 0.128
0.149-0.192 0.1495-0.1925 0.171
0.193-0.235 0.1925-0.2355 0.214
0.236-0.278 0.2355-0.2785 0.257
0.279-0.321 0.2785-0.3215 0.3

Explanation of Solution

Calculation: The frequency table for whole number is obtained in above part. It is the data that multiply each value by 1000 to ‘clear’ decimals from the data. The frequency table for whole number is as follows:

Class limits Class boundaries Midpoints Freq Relative freq
107–149 106.5–149.5 128 3 0.12
150–192 149.5–192.5 171 4 0.15
193–235 192.5–235.5 214 3 0.12
236–278 235.5–278.5 257 10 0.38
279–321 278.5–321.5 300 6 0.23

To find the decimal or original data, divide the class limits, class boundaries, and midpoints by 1000. The calculation as follows:

Class limits Class boundaries Midpoints
0.107–0.149 0.1065–0.1495 0.128
0.149–0.192 0.1495–0.1925 0.171
0.193–0.235 0.1925–0.2355 0.214
0.236–0.278 0.2355–0.2785 0.257
0.279–0.321 0.2785–0.3215 0.3

Interpretation: Hence, the data divide by 1000 is as follows:

Class limits Class boundaries Midpoints
0.107–0.149 0.1065–0.1495 0.128
0.149–0.192 0.1495–0.1925 0.171
0.193–0.235 0.1925–0.2355 0.214
0.236–0.278 0.2355–0.2785 0.257
0.279–0.321 0.2785–0.3215 0.300

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Chapter 2 Solutions

UNDERSTANDING BASIC STAT LL BUND >A< F

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