The table shows the distribution of the lengths of 20 iron rods measured in metres :
Length (m) | 1.0 – 1.1 | 1.2 – 1.3 | 1.4 – 1.5 | 1.6 – 1.7 | 1.8 – 1.9 |
Frequency | 2 | 3 | 8 | 5 | 2 |
Using an assumed mean of 1.45, calculate the mean of the distribution.
Explanation
Assumed mean = 1.45
Length (m) |
Freq (f) |
Mid-length (x) |
(d = x – A) | (fd) |
1.0 – 1.1 | 2 | 1.05 | -0.4 | -0.8 |
1.2 – 1.3 | 3 | 1.25 | -0.2 | -0.6 |
1.4 – 1.5 | 8 | 1.45 | 0 | 0 |
1.6 – 1.7 | 5 | 1.65 | 0.2 | 1.0 |
1.8 – 1.9 | 2 | 1.85 | 0.4 | 0.8 |
20 | 0.4 |
Mean (bar{x} = A + frac{sum fd}{sum f})
= (1.45 + frac{0.4}{20})
= (1.45 + 0.02)
= (1.47)