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well it is to the power of 365.if u like just increase p to suppose a grater value multiplying it by 365 will increase the probability>1 which is not possible due to axioms of probability. So I would recommend u raise it to the power.
 
well it is to the power of 365.if u like just increase p to suppose a grater value multiplying it by 365 will increase the probability>1 which is not possible due to axioms of probability. So I would recommend u raise it to the power.
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--Sourabh Ranka

Latest revision as of 05:59, 17 September 2008

There are two different methods here.... should it be times 365 or raised to the power of 365. And how do you know??? THANKS

// I may be wrong, but I think it should be ^365 instead of *365. If you think about it similarly to a flip of a coin every day for a full year instead of on or off, you would get the number of possible outcomes to be 2^365, either H or T each day. -Evan Clinton

// I agree, to maybe make it abit more clear, the same problem we're trying to solve would be akin to flipping a coin 365 times and finding the probability of getting at least one head. obviously the only time you get no heads is if you have all tails, and that will only be one out of the 2^365 outcomes. - Suan-Aik Yeo

/// well it is to the power of 365.if u like just increase p to suppose a grater value multiplying it by 365 will increase the probability>1 which is not possible due to axioms of probability. So I would recommend u raise it to the power. --Sourabh Ranka

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Basic linear algebra uncovers and clarifies very important geometry and algebra.

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