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Changing aces (Posted on 2005-01-31) Difficulty: 2 of 5

Four different aces are dealt, face up, one apiece, to you and three other players. They are shuffled and redealt, this time face down.

Before looking, the chance is 75% that you have an ace different from your original card.

Question 1) But what if the first player looks at his card and, without showing the card, truthfully reveals that it is not his original ace? What is the chance that you also have a different ace, given that one player's card is known to be different?

Question 2) And what if the second player also looks at his card and, without showing the card, also truthfully reveals that it is not his original ace? What is the chance that you also have a different ace, given that two players' cards are known to be different?

Question 3) Finally, what if the third player also looks at his card and, without showing the card, also truthfully reveals that it is not his original ace? What is the chance that you also have a different ace, given that all three other players' cards are known to be different?

See The Solution Submitted by Steve Herman    
Rating: 3.5000 (4 votes)

Comments: ( Back to comment list | You must be logged in to post comments.)
Hints/Tips re: Solution Comment 9 of 9 |
(In reply to Solution by Jer)

Yes,indeed. In the 1st case -18,since the 6 permutation are irrelevant =only 14 out of 18 interest you and so on.


  Posted by Ady TZIDON on 2010-02-25 05:58:54
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