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We have <math>\binom{n}{0}+ \binom{n}{1}+...+\binom{n}{n}=(1+1)^n=2^n</math>
 
We have <math>\binom{n}{0}+ \binom{n}{1}+...+\binom{n}{n}=(1+1)^n=2^n</math>
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== Using Induction ==
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'''Base case:''' <br>
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n=0: <math>2^0=1</math> Subsets with 0 elements: {∅} <br>
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n=1: <math>2^1=2</math> Subsets with 1 elements: {∅}, {1}
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So we can assume a set ''S'' with ''n'' elements has ''2^n'' subsets.
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n+1: <math>2^(n+1) = 2^1 + 2^n = 2*2^n = 2^(n+1)</math>
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-Jesse Straeter
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Revision as of 09:45, 7 September 2008

Using Binomial Theorem, $ (a+b)^n=\binom{n}{0}a^n+ \binom n 1 a^{n-1} b+...+\binom{n}{n}b^n $.

We have $ \binom{n}{0}+ \binom{n}{1}+...+\binom{n}{n}=(1+1)^n=2^n $


Using Induction

Base case:
n=0: $ 2^0=1 $ Subsets with 0 elements: {∅}
n=1: $ 2^1=2 $ Subsets with 1 elements: {∅}, {1}

So we can assume a set S with n elements has 2^n subsets.

n+1: $ 2^(n+1) = 2^1 + 2^n = 2*2^n = 2^(n+1) $

-Jesse Straeter


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