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I need to Find the solution of the recurrence for n, a power of two if T(n)=3T(n/2)+n for n>1 and T(n)=1 otherwise.

using substitution of n=2^m,S(m)=T(2^(m-1)) I can get down to:

S(m)=2^m+3*2^(m-1)+3^2*2^(m-2)+⋯+3^(m-1) 2^1+3^m

But I have no idea how to simply that. Any help is appreciated!1

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1 Answer 1

Have a look here at page 60 http://www.cs.columbia.edu/~cs4205/files/CM2.pdf.

And maybe you should have asked here http://math.stackexchange.com/

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Thanks for the link, but I'm still lost on how to proceed. I don't get how you can simply the two different bases. –  nat45928 Sep 16 '13 at 3:00

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