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I was trying to use the accumulate function for vectors

vector <double> A;
double B = 0;

A.reserve(100);
for(itr = 0; itr < 210; itr++)
{
    term1 = pow(r[itr], 12);
    term1 = 1/term1;
    term2 = pow(r[itr], 6);
    term2 = 2/term2;
    A.push_back(term1 - term2);
}
B = accumulate(A.begin(), A.end(), 0);

however, I always got B = 0, while A had nonzero values

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2  
Could we see the code that fills A? –  Daniel Daranas Nov 22 '11 at 13:30
    
You should post a minimal code example reproducing your problem. This piece of code doesn't really help. –  user405725 Nov 22 '11 at 13:31
    
More code required exception. –  hochl Nov 22 '11 at 13:31
    
This piece of code really does not help. Right now we can only say: you wrote a bug in [...] –  sehe Nov 22 '11 at 13:31
    
still doesn't change anything, I still get 0 –  Josh Nov 22 '11 at 13:37
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2 Answers

up vote 16 down vote accepted

std::accumulate is a bit sneaky in the sense that the type of the result is the type of the initial value, and not the type of the container elements! So your accumulator produces ints.

To fix this, accumulate into a double:

accumulate(A.begin(), A.end(), 0.0);
//                             ^^^^^^^ literal of type double
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1  
You are a genius! –  Josh Nov 22 '11 at 13:41
1  
+1 this one is tricky. –  hochl Nov 22 '11 at 13:42
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the key may be how your are doing [...] //Fill values into A ` vector A double B = 0;

A.reserve(100);
A.push_back(1);
A.push_back(2);
B = accumulate(A.begin(), A.end(), 0);
return 0;

resolves B = 3.0

if after the reserve you are doing a[0] = 1 this is bad code. what you might want to do instead is say resize.

reserve only gives you the backing memory capacity, it doesn't actually create the valid iterators.. so A.begin() still equals A.end()

looking at code change, do you know the difference between integer and double math? are term1 and term 2 integral?

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1  
they are doubles, and I was having a problem with the accumulate statement (I had to put in 0.0)...pretty sneaky –  Josh Nov 22 '11 at 13:43
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