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I am using the map.find(key) and map.end() functions in an if statement:

if( p_Repos->returnTypeMap().find(tc[0]) != p_Repos->returnTypeMap().end() ) 

But it doesn't work, and I get a Microsoft Visual C++ Runtime Library error that tells me "Expression: list iterators incompatible". tc[0] is just a string, and the key position in my map is a string.

But, they should be compatible, right?

Any help is greatly appreciated.

Thanks, Tom

Edit: Based on an answer found here: Finding value in unordered_map, I'm lead to believe this should def work.

Second Edit:
Here is the returnTypeMap() function:

std::unordered_map <std::string, std::pair<std::string, std::string>> returnTypeMap()
{
      return typeTable;
}

Here is the definition of my map:

std::unordered_map <std::string, std::pair<std::string, std::string>> typeTable;
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1  
Does returnTypeMap() return by value? If so, each iterator is pointing in to a completely different map. –  Mankarse Mar 16 '13 at 3:19
    
Mankarse, I am not sure what you mean. Should I set a local map = to the map I am storing in my p_Repos object? –  traggatmot Mar 16 '13 at 3:26
    
Maybe you should use if( p_Repos->returnTypeMap().count(tc[0]) > 0 ) instead. –  leewangzhong Dec 26 '13 at 7:45
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1 Answer

up vote 5 down vote accepted

You are returning the map by value, so each call evaluates to a completely different map. Iterators in to different containers are not compatible, and attempting to compare them has undefined behaviour.

Try changing your code to return by const reference:

std::unordered_map<std::string, std::pair<std::string, std::string>> const& 
returnTypeMap() const
{
    return typeTable;
}

or make a local copy of the map and call find and end on the single local copy:

auto typeTable{p_Repos->returnTypeMap()};
if (typeTable.find(tc[0]) != typeTable.end()) {
    //...
}
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Thanks - I'll make a local copy, as I am not very good at using the const qualifier. If you wouldn't mind being more specific with how I would use the const qualifier, I might try to implement that. –  traggatmot Mar 16 '13 at 3:27
    
@traggatmot: The important part isn't the const qualifier, but the fact that you would be returning by reference (and so would not be making copies of typeTable when returning it). –  Mankarse Mar 16 '13 at 3:37
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