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I need to get a reference to an iterator of a reference. However, my compiler is choking on this code:

template <typename InputIterator> size_t iLongestBegin(InputIterator first, InputIterator last)
{
    typedef typename std::iterator_traits<InputIterator>::reference SequenceT;
        //Problem is next line
    typedef typename std::iterator_traits<typename SequenceT::iterator>::reference T;
    for(size_t idx; idx < first->length(); idx++)
    {
    	T curChar = (*first)[idx];
    	for (InputIterator cur = first; cur != last; cur++)
    	{
    		if (cur->length() < idx)
    			return idx;
    		if (_tolower(cur->at(idx)) != _tolower(curChar))
    			return idx;
    	}
    }
    return first->length();
}

Any ideas on how to fix it? The error is

error C2825: 'SequenceT': must be a class or namespace when followed by '::'

Thanks! Billy3

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4 Answers 4

up vote 1 down vote accepted

Actually, just solved it :)

Problem is that SequenceT is a reference, not a type. Since you can't generally take the address of a reference type, the compiler won't generate iterators for it. I need to use value_type instead of reference:

template <typename InputIterator> size_t iLongestBegin(InputIterator first, InputIterator last)
{
    typedef typename std::iterator_traits<InputIterator>::reference SequenceT;
    typedef typename std::iterator_traits<std::iterator_traits<InputIterator>::value_type::iterator>::reference T;
    for(size_t idx; idx < first->length(); idx++)
    {
    	typename T curChar = (*first)[idx];
    	for (InputIterator cur = first; cur != last; cur++)
    	{
    		if (cur->length() < idx)
    			return idx;
    		if (_tolower(cur->at(idx)) != _tolower(curChar))
    			return idx;
    	}
    }
    return first->length();
}
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1  
You still have some things wrong. "typename T" should be just "T", and there is "typename" needed before "std::iterator_traits<InputIterator>::value_type::iterator" . Looks like you compile with some too lax compiler. Later if you want to compile with another one, you will get many problems –  Johannes Schaub - litb May 16 '09 at 15:04
    
Doesn't really bother me for now. Only compiler this thing will ever be pointed at is msvc++. Thank you though :) –  Billy ONeal May 17 '09 at 21:56

Did you miss specifying SequenceT in the template argument list - Where is it defined? Or maybe you must indicate that it's a type with typename SequenceT.

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It's a typedef on the line prior to the one he flagged as an error. –  anon May 16 '09 at 12:45
    
The function is passed a std::list<std::basic_string<wchar_t> > . –  Billy ONeal May 16 '09 at 13:41

You need to write typename SequenceT::iterator instead of just SequenceT::iterator. This is because SequenceT is a type that is derived from your template parameters (a "dependent type", in standard lingo), and iterator is a nested type in SequenceT, not a function or variable. When both of these things are true, the compiler can't figure out what you mean and needs to be told that SequenceT::iterator is a type with typename.

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Changed it to "typedef typename std::iterator_traits<typename SequenceT::iterator>::reference T;" Still no joy –  Billy ONeal May 16 '09 at 13:39
    
SequenceT is a reference to an element in the iterator sequence, so it doesn't have any nested typedefs. For example, if InputIterator is a vector<string>::iterator, then SequenceT is a "string &". Can you clarify what you want T to be in this case? –  Doug May 16 '09 at 13:58
    
T should be wchar_t given that the iterators are pointing to a std::list<std::basic_string<wchar_t> > –  Billy ONeal May 16 '09 at 15:51

The following compiles with g++ 4.4.0:

#include <iterator>
using namespace std;

template <typename InputIterator> size_t iLongestBegin(InputIterator first, InputIterator last) {
   typedef typename std::iterator_traits<InputIterator>::reference SequenceT;
   typedef typename std::iterator_traits<typename SequenceT::iterator>::reference T;
   for(size_t idx; idx < first->length(); idx++)
   {
      T curChar = (*first)[idx];
      for (InputIterator cur = first; cur != last; cur++)
      {
         if (cur->length() < idx)
             return idx;
         if (_tolower(cur->at(idx)) != _tolower(curChar))
             return idx;
      }
   }
    return first->length();
}
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Mine compiles fine too until I call it. Did you throw test data at it? –  Billy ONeal May 16 '09 at 14:05
    
No. If you have problems with code that is only demonstrable with certain test data, please include the test code in your question. –  anon May 16 '09 at 14:22
    
The problem code is there. My compiler doesn't even attempt to resolve the types and compile any template functions unless they are called. Not sure if GCC behaves that way. –  Billy ONeal May 16 '09 at 15:52
    
A C++ compiler must process the template, whether it is used or not. –  anon May 16 '09 at 16:18

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