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The following bit of code fails to compile. The error seems to be some kind of ambigous call to the merge routine. My understanding is that STL has a merge routine found in the std namespace, but as far as I can tell the name merge in the code below should be unique.

If I rename merge to xmerge, everything works. What could the problem be? where is the name clash coming from?

http://codepad.org/uAKciGy5

#include <iostream>
#include <iterator>
#include <vector>

template<typename InputIterator1,
         typename InputIterator2,
         typename OutputIterator>
void merge(const InputIterator1 begin1, const InputIterator1 end1,
           const InputIterator2 begin2, const InputIterator2 end2,
           OutputIterator out)
{
   InputIterator1 itr1 = begin1;
   InputIterator2 itr2 = begin2;
   while ((itr1 != end1) && (itr2 != end2))
   {
      if (*itr1 < *itr2)
         *out = *itr1, ++itr1;
      else
         *out = *itr2, ++itr2;
      ++out;
   }
   while (itr1 != end1) *out++ = *itr1++;
   while (itr2 != end2) *out++ = *itr2++;
}

int main()
{
   std::vector<int> l1;
   std::vector<int> l2;
   std::vector<int> merged_list;

   merge(l1.begin(),l1.end(),
         l2.begin(),l2.end(),
         std::back_inserter(merged_list));

   return 0;
}
share|improve this question
3  
Why should i give it a different name? i'm not using std namespace. – Matthieu N. Feb 2 '11 at 10:16
5  
But std::merge will be visible via ADL because you are using (e.g.) std::back_insert_iterator. – Charles Bailey Feb 2 '11 at 10:18
4  
@Reyzooti: Remember that codepad.org has a large selection of headers, which include <algorithm>, included before the listed code; codepad does this because it precompiles them for speed. Additionally, codepad has an (evil) global using directive for std, though it shouldn't matter here. This is why people's local compilers (Oswald's, Eddy's comments) and ideone.com (Johnsyweb's comment) do not show the error (they don't have this precompiled prelude) while codepad does. – Fred Nurk Feb 2 '11 at 10:59
4  
@Reyzooti: Is that so? – Fred Nurk Feb 2 '11 at 12:16
9  
@Reyzooti: I would advise you to be a little less aggressive in the assertion of your opinions. Charles and Fred are trying to help, and offer valuable advices, that you disagree with them does not entitle you to demean their contributions, whatever the "truth". – Matthieu M. Feb 2 '11 at 13:14

Compiler is getting confused between your merge function and the std::merge defined in the algorithm. Use ::merge to remove this ambiguity. This call is ambiguous as compiler is using Argument Dependendent Lookup to search for the function when unqualified function name is used.

share|improve this answer
1  
That is what i think is happening but shouldn't that routine be in the std namespace? – Matthieu N. Feb 2 '11 at 10:19
7  
@Reyzooti: The issue is that Argument Dependent Lookup implies that since the types passed to the function call are defined in std, then the std namespace enters the search space. Basically this is what enables you to write std::string("Hi ")+std::string("there") outside of the std namespace. The operator+ for strings is defined inside std, but you surely want that code to work without having to write std::operator+( str1, str2 ) or str1.operator+(str2), depending on how the operator is defined, which I don't quite care. – David Rodríguez - dribeas Feb 2 '11 at 10:49
5  
@Reyzooti: Yes, the standard library's version of merge is in the std namespace -- but ADL still causes it to be considered as a candidate because the arguments to the function are from the std namespace (for details of how ADL works see the Wikipedia article). – Martin B Feb 2 '11 at 10:49
1  
Martin B and David Rodrigues: You're both wrong. If its an ADL issue, it would have to be in regards to the iterator translation unit std namespace. If the iterator translation unit is leaking an std::merge symbol into the anonymous namespace then the problem is with the STL definition, is it not? – Matthieu N. Feb 2 '11 at 12:14
5  
@Reyzooti: I am almost positive that I am not wrong in this particular regard. If the standard library headers where declaring merge in the global namespace, it could be considered to be a problem, but the issue is that ADL will bring identifiers from the namespaces of the arguments, so even if std::merge is only declared inside the std header, it will be considered in the lookup because of the arguments. The simple case I wrote in my first comment here should demonstrate it. Else try this: namespace X { struct test {}; void foo( test const & ){} }; int main() { X::test t; foo(t); } – David Rodríguez - dribeas Feb 2 '11 at 12:53

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