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European Roulette Payout
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On a European Roulette Table (36 numbers plus a no win zero) what should be the average payout in percentage terms?
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No best answer has yet been selected by retrochoir. Once a best answer has been selected, it will be shown here.
For more on marking an answer as the "Best Answer", please visit our FAQ.Thanks, I thought it was something like that.
I am different roulette betting systems i.e. covering your previous bets.
These systems do give you a better chance in the short term but the casino will always win in the end.
I was playing on roulette the other night with pretend money. I started with �600 and betting on 1 number only I eventually got up to about �40,000!
Knowing my luck, this would never happen if I was betting real money!
I am different roulette betting systems i.e. covering your previous bets.
These systems do give you a better chance in the short term but the casino will always win in the end.
I was playing on roulette the other night with pretend money. I started with �600 and betting on 1 number only I eventually got up to about �40,000!
Knowing my luck, this would never happen if I was betting real money!
no, in lay terms you could expect in 37 spins each number should appear once?
put a �1 bet on the second spin being different from the first and then that bet including true odds return would be �1.02 that amount is bet on the expectation the third number to appear would be different to the first two...and so on in .fractions the first spin would be 37/37=1 ie guaranteed a new number, the second spin would be 36/37 and so on.
i'll give you a hint....its big big big numbers
put a �1 bet on the second spin being different from the first and then that bet including true odds return would be �1.02 that amount is bet on the expectation the third number to appear would be different to the first two...and so on in .fractions the first spin would be 37/37=1 ie guaranteed a new number, the second spin would be 36/37 and so on.
i'll give you a hint....its big big big numbers
Yes but the law of probability states that even though 1 number may have already appeared once, it still has the exact same chance of appearing again i.e. 1 in 37.
Even if the number 10 appeared 3 times in a row, it would still have the same chance of appearing on the next spin as any of the other 36 numbers.
Even if the number 10 appeared 3 times in a row, it would still have the same chance of appearing on the next spin as any of the other 36 numbers.
not bad but light years away
695,000,000,000,000.
it escalates a bit
the accumulated bet would pay 50850 for the first 25 numbers all being different
the next bet would be your accumulated stake of 50850 at true return against a 12 in 37 chance of another new number appearing = x 3.083333
you would then carry over 156621 to the next stage which if successful x 3.363636 = 526245
youre now at the lively part of the bet
695,000,000,000,000.
it escalates a bit
the accumulated bet would pay 50850 for the first 25 numbers all being different
the next bet would be your accumulated stake of 50850 at true return against a 12 in 37 chance of another new number appearing = x 3.083333
you would then carry over 156621 to the next stage which if successful x 3.363636 = 526245
youre now at the lively part of the bet
I'm still trying to get my head around that but it is really interesting.
It's a shame this kind of result can't be obtained in a real situation.
You have mentioned mean18 a number of times. I've discovered they have an e-book available. Are you aware of this publication? Are you a contributor? Is it any good?
I appreciate your interest in advance.
Thanks a lot
Jeff
It's a shame this kind of result can't be obtained in a real situation.
You have mentioned mean18 a number of times. I've discovered they have an e-book available. Are you aware of this publication? Are you a contributor? Is it any good?
I appreciate your interest in advance.
Thanks a lot
Jeff
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