Revision as of 09:12, 17 September 2008 by Pjcannon (Talk)

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Couple things to remember for this proof:

$ P(A|B)= P(A \bigcap B)/P(B) $

so

$ P(A \bigcap B)= P(A|B)*P(B) $

Make sure you use the theorem of total probability, which states:

$ P(A)=P(A|C)P(C)+P(A|C^c)P(C^c) \! $

Try and rearrange what we want to proof so it looks like what we know is true.

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