For first-order reactions: $k = \dfrac{2.303}{t} \log\left(\dfrac{[A]_0}{[A]}\right)$ and $t_{1/2} = \dfrac{0.693}{k}$.
Here, 20 minutes interval and k calculated from concentrations leads to $t_{1/2} = 3.01 \log(x/y)$.
Consider the following plots of log of rate constant $ k (log k)$ vs $ \frac{1}{T} $ for three different reactions. The correct order of activation energies of these reactions is: 
Choose the correct answer from the options given below:
Find the variance of the following frequency distribution:
| Class Interval | ||||
| 0--4 | 4--8 | 8--12 | 12--16 | |
| Frequency | 1 | 2 | 2 | 1 |