1) Of course, need to incorporate that.
2) I don't agree with the answer, in particular for t=0, because if you think about it logically if the madman fires 0 times, there's no chance you can get shot
3) Based on the given answer, you're looking for the conditional probability and not the unconditional
4) I assumed the revolver was being shot with the replacement above but in reality, the revolver rotates one barrel to the next so it should be without replacement.
Revised answer...
\(\displaystyle \Pr(\text{you get shot} | \text{t times}) = 1- \Pr(\text{madman gets shot} | \text{t times}) - \Pr(\text{no one get shot | \text{t times}})\)
Where:
[imath]\Pr(\text{Revolver 1}) = \Pr(\text{Revolver 2}) = \Pr(\text{Revolver 3}) = \dfrac{1}{3}[/imath]
[imath]\Pr(\text{madman gets shot within t times}| \text{Revolver 1} ) = 0[/imath]
[imath]\Pr(\text{madman gets shot within t times}| \text{Revolver 2} ) = \dfrac{t}{6}[/imath]
[imath]\Pr(\text{madman gets shot within t times}| \text{Revolver 3} ) =\dfrac{1}{30}(11t-t^2)[/imath]
It follows:
[imath]\Pr(\text{madman get shot} | \text{t times} ) =
\dfrac{1}{3}\left[ \dfrac{t}{6} + \dfrac{1}{30}(11t-t^2)\right]
[/imath]
[imath]\Pr(\text{both live}| \text{Revolver 1} ) = 1[/imath]
[imath]\Pr(\text{both live}| \text{Revolver 2} ) = \Pr(\text{madman live within t times}| \text{Revolver 2} )
\times \Pr(\text{you live within t times}| \text{Revolver 2})\\
= \left[1-\dfrac{1}{3}\left( \dfrac{t}{6} + \dfrac{1}{30}(11t-t^2)\right)\right] \times \left(\dfrac{5-t}{6-t}\right) \text{ for t < 5, else 1}[/imath]
[imath]\Pr(\text{both live}| \text{Revolver 3} ) = \Pr(\text{madman live within t times}| \text{Revolver 3} )
\times \Pr(\text{you live within t times}| \text{Revolver 3} ) \\
= \left[1-\dfrac{1}{3}\left( \dfrac{t}{6} + \dfrac{1}{30}(11t-t^2)\right)\right] \times \left(\dfrac{4-t}{6-t}\right) \text{ for t < 4, else 1}
[/imath]
Results:
| t times | Pr(you get shot | t times) |
| 1 | 0.1444... |
| 2 | 0.1222... |
| 3 | 0.1000... |
| 4 | 0.0555... |
| 5 | 0 |
| 6 | 0 |
