Revision as of 06:41, 15 October 2008 by Huffmalm (Talk | contribs)

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Here's what I did, and it seemed to work. Let me know if I forgot anything.

Simply expand the original $ Pr(x) = \left( \begin{array}{ccc} n \\ x \end{array} \right)p^{x}(1-p)^{n-x} $.

Now, see if substituting n-x for x and expanding results in the same answer.


Don't forget that: $ {n \choose k} = \frac{n \cdot (n-1) \cdots (n-k+1)} {k \cdot (k-1) \cdots 1} = \frac{n!}{k!(n-k)!} \quad \mbox{if}\ 0\leq k\leq n \qquad $


//comment Beau Morrison

Also remember to prove that:

$ {n \choose k} = {n \choose n-k} $

when solving the equality.

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Abstract algebra continues the conceptual developments of linear algebra, on an even grander scale.

Dr. Paul Garrett