Poll: What is the better action to take?
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Switch doors
56.41%
22 56.41%
Stay with your selected door
10.26%
4 10.26%
It doesn't matter, they're both as likely to get me a chinchilla.
33.33%
13 33.33%
Total 39 vote(s) 100%
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Monty Hall problem - SP edition
#1
Since we're having probability fun...

Imagine you are on a game show. You are offered three doors. Behind two of these three doors are pineapples. Behind the third door is a chinchilla. You don't like pineapples. Pineapple pineapples. You want one of those damn cute chinchillas.

You are allowed to select one of the three doors. Upon selecting a door, your pimento host (me) opens a door that you did not select, revealing a pineapple. You now have a selection of two doors; the one you chose and the third one that's unchosen and unrevealed. You can either stay with your choice or you can switch doors.

What action will lead to a higher chance of getting the cute chincilla?
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#2
switch. =)
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#3
Always switch. If you choose a pineapple and switch, you get a chinchilla, if you choose a chinchilla and switch, you get a pineapple. Since there's a 2/3 chance you choose a pineapple in the beginning, odds are better if you switch.Goggleemoticon
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#4
My magical Goggleemoticon will enable me to see which door the Chin is hiding behind. Glitter Heart
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#5
Depends. If I chose a pineapple door, switch. If I chose the chinchilla door, stay. ^^

You never mentioned anything about random chance. And in the case that the chinchilla is behind the door I chose, it's obviously better not to switch.
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#6
Russt Wrote:You never mentioned anything about random chance. And in the case that the chinchilla is behind the door I chose, it's obviously better not to switch.

But what's the probability that it is?
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#7
Devil's Sunrise Wrote:But what's the probability that it is?
1/3. But that doesn't mean that if I hit that 1/3 chance on my original pick, it's still a 'good' choice to switch from an omniscient point of view. Rolleyes
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#8
Stay. pineapple probability, I'm 100% sure I got it right on my first guess Tongue
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#9
This question was more fun when certain death was two of the three choices.
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#10
Wait... the way I see it, there are three doors. You pick a door. The host opens one that you didn't pick, which contains a pineapple. There are two pineapples total and one chinchilla. Therefore, one pineapple is eliminated; there is one pineapple behind a door and one chinchilla behind a door, with two doors still to open. So the way I see it, you now have a 50/50 chance of getting a chinchilla.
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#11
Switch your door.

You have a 1/3 chance of getting the Chinchilla. Not good odds. Since the host opens a door revealing a pineapple, you are down to choosing two doors. Now since your door has a 1/3 chance of getting the Chinchilla, and the host already eliminated one door, it stands that the only door left has the Chinchilla 2/3 of the time, since you know the door you picked has the Chinchilla only 1/3 of the time.

This problem has sparked a huge raging debate amongst probability mathe-wannabes.
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#12
Look at Fiel in the audience, and see what door he's staring at and sweating over.
Since he has chin-radar, fallow his gaze.
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#13
I'd say it truly doesn't matter what you do. It all ends up being a mind game.

"Is he trying to get me to switch doors so I don't get the Chin?"

or

"Is he trying to get me to stay so I don't get the Chin."

In a case like this, I'd just do. Don't think, just do. He is trying to get you to rip your own mind apart.
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#14
Wow, doesn't this just make SP seem so smart?

I'd say most of the people that know the answer have seen this before Tongue
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#15
You (pimento host) could ALWAYS open a pineapple door. Even if it was our correct guess or not.

THEREFORE, I vote for it doesn't matter, you are playing with us. >Sad
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#16
Heidi Wrote:Wow, doesn't this just make SP seem so smart?

I'd say most of the people that know the answer have seen this before Tongue
I know I have. 's why I didn't vote.
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#17
KajitiSouls Wrote:Switch your door.

You have a 1/3 chance of getting the Chinchilla. Not good odds. Since the host opens a door revealing a pineapple, you are down to choosing two doors. Now since your door has a 1/3 chance of getting the Chinchilla, and the host already eliminated one door, it stands that the only door left has the Chinchilla 2/3 of the time, since you know the door you picked has the Chinchilla only 1/3 of the time.

This problem has sparked a huge raging debate amongst probability mathe-wannabes.

I don't see why it doesn't split into a 50-50 chance. Couldn't you say either door now has a 2/3 chance of having a Chin? Also, You could possibly say that you knew your door had a 1/3 chance of not having a Pineapple and now, since a door was eliminated, that your door has a 2/3 chance of not having a Pineapple. The numbers can be manipulated too much; just choose a door.

EDIT: Another thing I can point out, you can say the other door had 1/3 chance of not getting the chinchilla. Therefore, once a door is eliminated, using that logic, you could effectivly say the other door now has a 2/3 chance of not getting the Chin. The numbers can go anyway you want them to, as I see it.

You could make some other possible scenarios, both for or against you getting the Chin.
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#18
TehMatt Wrote:I don't see why it doesn't split into a 50-50 chance. Couldn't you say either door now has a 2/3 chance of having a Chin? Also, You could possibly say that you knew your door had a 1/3 chance of not having a Pineapple and now, since a door was eliminated, that your door has a 2/3 chance of not having a Pineapple. The numbers can be manipulated too much; just choose a door.

EDIT: Another thing I can point out, you can say the other door had 1/3 chance of not getting the chinchilla. Therefore, once a door is eliminated, using that logic, you could effectivly say the other door now has a 2/3 chance of not getting the Chin. The numbers can go anyway you want them to, as I see it.

Door A: Good
Door B: Bad
Door C: Bad

You choose 1 door and can either switch or stay. That yields 6 possibilities

Choose A + Stay = Win
Choose A + Switch = Lose
Choose B + Stay = Lose
Choose B + Switch = Win
Choose C + Stay = Lose
Choose C + Switch = Win

As you can see, switching gives you 2/3 winning while staying gives you 1/3

Also can be thought of variable change.
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#19
Kaasoljoyyx Wrote:Door A: Good
Door B: Bad
Door C: Bad

You choose 1 door and can either switch or stay. That yields 6 possibilities

Choose A + Stay = Win
Choose A + Switch = Lose
Choose B + Stay = Lose
Choose B + Switch = Win
Choose C + Stay = Lose
Choose C + Switch = Win

As you can see, switching gives you 2/3 winning while staying gives you 1/3

Also can be thought of variable change.

But, now a door is gone. Let's say you chose door A and he opened up door C. You still have no idea what is behind which door. He you have two choices. Stay or switch, 50-50 chance of selecting it right. EDIT: Once one door was opened a new factor was introduced completely changing the problem.
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#20
Quantact Wrote:My magical Goggleemoticon will enable me to see which door the Chin is hiding behind. Glitter Heart

i like this one. we are using SP memes for this after all. and make the pinaeapples explode like in bloons TD 3. then people will be scrambling for the goggles. >=)
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