Advertisements
Advertisements
Question
A frequency distribution of funds collected by 120 workers in a company for the drought affected people are given in the following table. Find the mean of the funds by ‘step deviation’ method.
|
Fund (Rupees)
|
0-500 | 500-1000 | 1000-1500 | 1500-2000 | 2000-2500 |
| No. of workers | 35 | 28 | 32 | 15 | 10 |
Sum
Advertisements
Solution
| Class
Fund (Rupees)
|
Class Mark (xi) |
di = xi − A |
`u_i = d_i/g`
|
Frequency (Number of farm owners) fi |
Frequency × deviation (fi × ui) |
| 0-500 | 250 | −1000 | −2 | 35 | −70 |
| 500-1000 | 750 | −500 | −1 | 28 | −28 |
| 1000-1500 | 1250 → A | 0 | 0 | 32 | 0 |
| 1500-2000 | 1750 | 500 | 1 | 15 | 15 |
| 2000-2500 | 2250 | 1000 | 2 | 10 | 20 |
| ∑fi = 120 | ∑fiui = −63 |
Here, ∑fiui = −63, ∑fi = 120, g = 500
`bar u = (sum f_iu_i)/(sum f_i)`
= `(-63)/120`
= −0.525
Mean `(bar X) = A + bar u g`
= 1250 + (−0.525) × 500
= 1250 − 262.50
= 987.50
∴ The mean of the funds is ₹ 987.50.
shaalaa.com
Is there an error in this question or solution?
