You are in a free-for-all shootout involving three people, and by some rotten luck, you are the worst shooter of the group. You, shooter
A, hit your target 33% of the time.
The other two,
B and
C, have 50% and 100% accuracy respectively.
At least you get to shoot first, with B going after you, and C going last. Everyone takes turns shooting until all but one are dead.
Who will you fire at in the first round to maximize your odds of survival?
Free for All
Assume A shoots at C first and determine possible
outcomes for A to win;
[1]A misses C, B misses C, C shoots B, A shoots C or dies
.67 x .5 x 1.0 x .33 = .11055
[2]A misses C, B shoots C, Dual between A and B with A
shooting first:
.67 x .5 = .335
The dual between A and B ensues as follows with A
shooting first. A shoots at B with a 33% chance of
success. Assuming A misses(67%), B has a .5 chance of
hitting A, so B has a .5 x .67 = .335 chance of that
happing. There's the .33 chance of them both missing.
This distribution happens infinitely, right? But the
probability comes to 50-50 of A winning this one. That
is, the distribution is .33 to .33 or .33/(.33+.33)
So continuing with scenario [2], A has a .335 x .5 =
.1675 chance of winning.
[3] This time A hits C, so B shoots at A first in the
dual.
A hits C happens 33% of the time.
The dual between A and B with B shooting first has a
different probability if B shoots first. In round 1, B
has a 50% chance of hitting A. If B misses, A has a .33
chance, so this happens .5 * .33 times or .165 times.
The other .335 head into the next round. Again,this
distribution continues infinitely for the miss-miss
remainder of the previous round. Roughly, it comes out
to a 75% chance of B winning, and a 25% chance of A
winning. Forget the rounding.
So back at [3], A has a .33 * .25 = .0825 (roughly)
chance of winning this way.
Add up [1]+[2]+[3]= .11055+.1675+.0825=36% chance of A
winning if he shoots at C first.
If A shoots at B first, the following could happen
[1]A misses B, B misses C, and C shoots B, so A better
shoot C, or die. Same probability as [1] above, so
.11055.
[2]A misses B, B shoots C, A shootout with B with A
shooting first.
.67x.5x.5 = .1675
[3] A shoots B, C shoots A, A has no chance to win, so
that's a .33*0=0
Adding these up, we get .1105x.1675 or .27805
Therefore, A should shoot at C first. Am I right?
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Posted by Lawrence
on 2003-08-27 18:25:50 |
Solution
