Three good students were seated next to each other. What is the probability of them having the same incorrect choice for four consecutive questions?

Probability of the first student of the group of three getting 4 incorrect answer of 1st question = $$\frac{4}{5}$$

Probability of the second student of the group getting the same incorrect answer of 1st question as that of the first student = $$\frac{4}{5}\times\ \frac{1}{5}$$

Probability of the third student of the group getting the same incorrect answer of 1 st question as that of the first student = $$\frac{4}{5}\times\ \frac{1}{5}$$

Therefore, the probability of all the three getting same incorrect answer of 1st question = $$\frac{4}{5}\times\frac{4}{5}\times\frac{1}{5}\times\frac{4}{5}\times\frac{1}{5}=\frac{4^3}{5^5}$$

Hence, the probability = $$\left(\frac{4^3}{5^5}\right)^4$$