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The function below returns a value for mu that is always equal to "result" instead of the result of the division. Why am I missing for division to work properly?

 for k = 0:10
     result = func1(.95,k);
     plusone = func1(.95,(k+1));
     fprintf('plusone = %f  result = %f\n', plusone, result);
     mu = double(plusone)/double(result);
     fprintf('mu = %f\n', mu);
 end

The code for func, if it helps, is:

 function result = func1(c, k)

 exp = 2^k;

 result = c^exp;
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Always think of accepting answers please. You'll add reputation to the answering users accounts and thus keep them motivated to post more answers. –  tim Feb 2 '12 at 8:30
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1 Answer

up vote 5 down vote accepted

There is no error. mu should always be equal to result because

plusone = c^(2^(k+1)) 
        = c^(2*(2^k))
        = (c^(2^k))^2
        = result^2

result^2/result = result 
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Unbelievable that I missed that. Thanks –  flapjackery Feb 2 '12 at 2:37
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Easy to miss error, @flapjackery. Please consider accepting the answer if it solved your issue. Cheers. –  jonnat Feb 2 '12 at 2:52
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