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Question
The mean of the following frequency distribution is 57.6 and the sum of observations is 50. Find the values of f1 and f2.
| Class | 0 – 20 | 20 – 40 | 40 – 60 | 60 – 80 | 80 – 100 | 100 – 120 |
| Frequency | 7 | f1 | 12 | f2 | 8 | 5 |
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Solution
1. Organize the data
First, let’s find the class marks (xi) and the products (fixi) for each class interval.
The class mark is the midpoint of the interval:
`x_i = ("Lower Limit" + "Upper Limit")/2`
| Class | Frequency (fi) | Class Mark (xi) | fixi |
| 0 – 20 | 7 | 10 | 70 |
| 20 – 40 | f1 | 30 | 30f1 |
| 40 – 60 | 12 | 50 | 600 |
| 60 – 80 | f2 | 70 | 70f2 |
| 80 – 100 | 8 | 90 | 720 |
| 100 – 120 | 5 | 110 | 550 |
| Total | 50 | 1940 + 30f1 + 70f2 |
2. Formulate the equations
Equation 1: From the sum of frequencies
The problem states the sum of observations is 50.
7 + f1 + 12 + f2 + 8 + 5 = 50
32 + f1 + f2 = 50
f1 + f2 = 18 ...(1)
Equation 2: From the mean
The mean formula is `barx = (sumf_ix_i)/(sumf_i)`.
Given `barx = 57.6`:
`57.6 = (1940 + 30f_1 + 70f_2)/50`
Multiply both sides by 50:
2880 = 1940 + 30f1 + 70f2
940 = 30f1 + 70f2
Divide the entire equation by 10 to simplify:
3f1 + 7f2 = 94 ...(2)
3. Solve the system of equations
Multiply equation (1) by 3:
3f1 + 3f2 = 54 ...(3)
Subtract equation (3) from equation (2):
(3f1 + 7f2) – (3f1 + 3f2) = 94 – 54
4f2 = 40
f2 = 10
Substitute f2 = 10 into equation (1):
f1 + 10 = 18
f1 = 8
The values of the missing frequencies are f1 = 8 and f2 = 10.
