Bantari wrote:Bill Spight wrote:Bantari wrote:So, the whole question, paraphrased, simplified, and without confusing and unnecessary details, boils down to this:
- You have TWO boxes, Bb and Bw.
- Pick one at random.
- What is the chance of having picked Bb? (since this is the only scenario in which the second/hidden stone is also B)
The answer is clearly 50%.
If you pick one of those two boxes at random, indeed, the probability is 50% that one of the boxes has two Black stones in it. But we have not used all the information that we got from drawing a Black stone from a box.
Suppose now that you draw a stone from the box that you picked, and it is Black. Now what is the probability that the box has another Black stone in it?
Yeah, sleep is a wonderful thing... I should not get into these types of discussions in the middle of the night.
Now I see that you can view the question in two different ways, maybe its the wording... and I think I got fixated on the wrong interpretation. Or maybe everybody else has... Anyhow... I think this is the bottom of the issue here:
Interpretation #1:You can see it like the TJ's code - you have three boxes, draw a stone randomly, and out of the cases when B comes up first, what is the statistical probability that a second B will come second too? You have 3 possible cases in the results set: (B1,B2), (B2,B1), and (B3,W1) - and out of the 3 in 2 B will also be on second draw. Thus the answer in this case is 2/3, as demonstrated. Or:
Interpretation #2:You FIX the situation so that B WILL COME FIRST ON EACH DRAW (the wording of the question MIGH SEEM TO stipulate this) - like you throw away the WW box and attach a string to A BLACK STONE in each remaining box ensuring it to be the first draw. In which case it is only the question which of the two boxes you pick and the answer is 50%.
I assume that interpretation #1 is perceived as 'correct' by the math types out there... although I don't really see why that should be without knowing more about the circumstances of the initial problem.
Anyways - does the above two interpretation seem like a likely source of the confusion?
It makes it a non-issue for me, mathematically... everything's clear other than the problem itself.
I went back and took a look at your first post in this thread. Here is what you were responding to.
Choices at first:
- BB
- BW
- WW
I choose a box and take out a B stone, so the WW option has just been eliminated, hasn’t it? How should then a 2/3 chance remain? There is no /3 anymore, so it should be 2/2 -> 1:1 chance, no?
You are right that taking out a B stone is ambiguous.
But here is an earlier statement of the problem.
Suppose you have 3 Go bowls:
- One with 2 Shell stones
- One with 2 Slate stones
- One with 1 Shell and 1 Slate stone
Suppose you randomly pick a bowl, then take one of the 2 stones out from the bowl.
This stone turns out to be
. What is the probability that the second stone in the bowl is also
?
The color of the stone changed, but that is immaterial.
Here you did not deliberately pick a
, that's just how it turned out.
Therefore an interpretation that guarantees that that the picked stone is
is incorrect. (Sure, somebody may have rigged the choice, but probability is about what what we know. Somebody could have rigged the choice the other way, as well.
)
