A six sided unbiased die with four green faces and two red faces is rolled seven times. Which of the following combinations is the likely outcome of the experiment?
(A) Three green faces and four red faces.
(B) Four green faces and three red faces.
(C) Five green faces and two red faces.
(D) Six green faces and one red face.
My Try:
As probability of occurrence of green face $= 4/6 = 2/3$, and probability of occurrence of red face $= 2/6 = 1/3$.
If the die is rolled $6$ times, then expectation of green and red faces are $4$ and $2$ respectively. But die is rolled $7$ times, so I prefer $5$ green and $2$ red faces as green faces has more probability than red faces.
Could you please explain it?
Thanks in advance.
Best Answer
The probability of getting 3 red and 4 green. $$\Pr(R=3, G=4)=\binom{7}{3}\left(\frac13\right)^3\left(\frac23\right)^4$$ The probability of getting 2 red and 5 green. $$\Pr(R=2, G=5)=\binom{7}{2}\left(\frac13\right)^2\left(\frac23\right)^5$$
First we compute number of ways in which you can have 3 red and 4 green outcomes in 7 outcomes. This is given by $$\binom73$$now we multiply this with probability that a single outcome may have 3 red and 4 green in a fixed order. $$\left(\frac13\right)^3\left(\frac23\right)^4$$ And we multiply these two. Similarly you can solve for the second one.
For option (C) the probability is $\frac{560}{3^7}$ and for (D) is $\frac{672}{3^7}$ so answer is D