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bonanova
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Question

A standard cubic fair die has 6 faces with equal probability of 1/6 for each face to show.

Let die A be numbered 1 2 3 4 5 6.

Let die B be numbered 1 1 2 4 6 7.

Let die C be numbered 1 1 3 4 6 7.

If A is rolled against B, in 16 cases A is larger; in 15 cases B is larger; in 5 cases it's a tie.

If C is rolled against A, in 16 cases C is larger; in 15 cases A is larger; in 5 cases it's a tie.

If C is rolled against B, in 15 cases C is larger; in 14 cases B is larger; in 7 cases it's a tie.

Thus, A is said to beat B; C is said to beat A; and C is said to beat B.

Now,

Is it possible for the faces of three dice D, E,and F to be numbered in a way that:

D beats E; E beats F; and F beats D?

[Edited to make it clear we're talking about three new dice.]

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But I'd have to say no.

Oh wait! I completely misunderstood the question. I thought you were asking if the dice you proposed could fit the problem. Hmmm... Now I need to think

Edited by Noct
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I have an answer that works, I believe.

Die D = 1,1,5,5,5,5

Die E = 3,3,3,3,3,6

Die F = 2,2,2,2,6,6

Die D is higher than Die E 20/36 possibilities.

Die E is higher than Die F 20/36 possibilities.

Die F is higher than Die D 20/36 possibilies (12 rolls when die D is a 1 + 8 rolls when die D is a 5 and die F is a 6)

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I have an answer that works, I believe.
Die D = 1,1,5,5,5,5

Die E = 3,3,3,3,3,6

Die F = 2,2,2,2,6,6

Die D is higher than Die E 20/36 possibilities.

Die E is higher than Die F 20/36 possibilities.

Die F is higher than Die D 20/36 possibilies (12 rolls when die D is a 1 + 8 rolls when die D is a 5 and die F is a 6)

You've got it.

The winning totals actually are

20-16,

24-10 [and two ties, with the 6's] and

20-16.

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