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1/3, and the odds stay the same?

Yes?

I feel like you're trying to set up a Monty Hall, but I'm fairly certain it doesn't work

I always tell my students to avoid "common errors." The common error here is to try to treat each selection separately, rather than just skip to the output of two drawn cards. Since this is a combination not a permutation (as MJB stated), the number of possibilities is very limited.

In the end, the real question is whether knowing you have one of two different cards yields more successful outcomes than knowing you only have one of those cards in particular. 

I still maintain that as the draw is a static event the odds are always 1 in 6. You can evaluate the second card on the basis of the first. It's not a Monty Hall because there isn't a choice involved.

Feels like semantics

So which door doesn't have a goat?

I'm going with the odds are 1 in 2 and yes they are the same

Suppose you have a deck of 4 cards: Son of God, New Jerusalem, Christian Martyr and Burial.

You draw 2 of the cards, but don't look at them.

I look at the two remaining cards. Suppose I told you that one of the cards you drew was a good dominant.

Knowing that, what are the odds you drew both good dominants?

Now suppose I told you that you for sure drew Son of God.

Knowing that, what are the odds you drew both Son of God and New Jerusalem? Are the odds the same or different?

 

The first thing I'd have to do is figure out the probability that you are lying
If I decided to assume that you weren't lying, I could get on with the problem.
There are 24 ways the deck can be arranged, in 4 of them do you draw both Good Dominants. Of the 24 options 4 are removed if you know you drew at least 1 good dominant, leaving you with 4 options out of 20, or 1/5. From there an additional 8 options are removed if you know one of the dominants is Son of God, leaving you with 4 options out of 12, or 1/3.

There are 24 ways the deck can be arranged...

You can save yourself some time if--instead of starting with the full deck--you only worry about the two drawn cards (12 ways to draw the two cards). This can also be simplified by realizing that the order of the draw is *not* important in this case. So there are actually only six combinations to worry about: SN, SC, SB, NC, NB, and CB.

Quote from: ChristianSoldier on December 12, 2016, 03:33:16 AM

There are 24 ways the deck can be arranged...

You can save yourself some time if--instead of starting with the full deck--you only worry about the two drawn cards (12 ways to draw the two cards). This can also be simplified by realizing that the order of the draw is *not* important in this case. So there are actually only six combinations to worry about: SN, SC, SB, NC, NB, and CB.

I knew instinctively that a bunch of them were redundant (3/4 to be exact) because the order in the deck and of the draw didn't matter (and there are 4 ways to order the set while still keeping the same drawn combinations) but because I was only dealing with 24 combinations, it wasn't really that much longer to write down all the combination than to prove to myself the exact combinations.

I actually debated posting my proof (which was essentially the list of the options, highlighted in different colors depending on whether they were what I was looking for, dropped from knowing there was a good dominant or dropped because I knew I had Son of God) but I decided it wasn't important enough.

But this sort of thing is easy math, I one time figured out an equation to figure out how to maximize your chance of drawing a specific number of copies of a card (or theoretically set of cards) in an opening hand (by inputting the number of cards you want, the number of cards you draw, the number of the desired cards in the deck and the total number of cards in the deck). It turned out to be mostly useless, except to prove what Magic: the Gathering players already knew about how many lands to include in a normal deck.

Quote

The first thing I'd have to do is figure out the probability that you are lying
If I decided to assume that you weren't lying, I could get on with the problem.
There are 24 ways the deck can be arranged, in 4 of them do you draw both Good Dominants. Of the 24 options 4 are removed if you know you drew at least 1 good dominant, leaving you with 4 options out of 20, or 1/5. From there an additional 8 options are removed if you know one of the dominants is Son of God, leaving you with 4 options out of 12, or 1/3.

Winner!!! 

Not winner, but looser. The chances are in both cases 1/3. You made a typical mistake in complicating the simple things and overcounting yourself.

When we know that one of the cards is a good dominant, we can only eliminate the combos of:
C-B
B-C

When we know specifically that one of the cards is SoG, we can also eliminate the combos of:
N-B
N-C
C-N
B-N

Therefore our odds improve when we know we have SoG. Also, remember that the question being asked is not "What are the odds of drawing both dominants?" The question is "What are the odds that we drew both dominants?"