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This is a pretty straightforward thing, but I've been bashing my head trying to understand. I'm trying to compare the elements of a vector<complex <double> > vec with a complex <double> num to check if num already exists on vec. If it does, it is not added. I tried to use the equal() and algorithm, with no success. Does anybody knows a fast way to do that?

EDIT2 : I'm trying to do that for complex numbers as a simplification, as I also need to perform the same operation on a struct:

struct thing{
 int i;
 int j;
 complex <double> pos;
}typedef t_thing;

complex <double> new_num(2.0,2.0);
t_thing will_insert;
will_insert.i = 1;
will_insert.j = 1;
will_insert.pos = new_num;
vector<t_thing> vec_thing;
if(! (find(vec_thing.begin(),vec_thing.end(),will_insert) == vec_thing.end())){
  vec_thing.push_back(will_insert);
}else { 
 cout<<"element already on vec_thing"<<endl;
}

EDIT 3: I've overloaded the operator ==, but find cannot work with that:

: error: no matching function for call to ‘find(__gnu_cxx::__normal_iterator<thing*, std::vector<thing, std::allocator<thing> > >, __gnu_cxx::__normal_iterator<thing*, std::vector<thing, std::allocator<thing> > >, t_thing&)’
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std::find does not return a boolean - it returns an iterator. If the iterator points to vec.end(), then you know the element does not exist in the vector. Otherwise, find will return an iterator pointing to the located element. –  Charles Salvia Sep 24 '10 at 21:35
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1 Answer

up vote 4 down vote accepted

The std::equal algorithm is used to compare 2 iterator ranges. So you would use it to compare, for example, 2 vectors to see if both vectors contain the same elements.

In your case, where you only need to check if a single element is inside the vector, you can just use std::find

if (std::find(vec.begin(), vec.end(), std::complex<double>(1,1)) == vec.end()) {
   /* did not find element */
}
else { /* found the element */ }

Note however that std::vector is not particularly well suited for lookup algorithms like this, since each lookup gives you O(N) complexity. You might want to think about using std::set, so you get logarithmic complexity for lookup, and automatic assurance that you don't have any duplicate elements.

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+1 for using set if the OP is trying to enforce a uniqueness constraint. –  Timo Geusch Sep 24 '10 at 21:19
    
Just realized that this contained my answer already :sigh:. Deleted my answer and +1. –  Billy ONeal Sep 24 '10 at 21:22
3  
While std::complex can be compared with operator==, it is stated that the comparison operator returns lhs.real() == rhs.real() && lhs.imag() == rhs.imag(). Since instantiating std::complex with anything but a floating point type is undefined, I would assume this can lead to the usual floating point comparison issues. Wouldn't a custom comparison function be in ordr here? –  Jim Brissom Sep 24 '10 at 21:23
1  
Or, if insertions are relatively infrequent or the container is relatively small, a sorted std::vector may provide better performance (using std::binary_search and friends). –  James McNellis Sep 24 '10 at 21:24
    
The g++ compiler keeps giving me errors about the compilation, saying that there is no matching function to call for complex <double>. It works for double. The floating point comparison problems can also appear. –  Ivan Sep 24 '10 at 21:25
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