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void printOutput(std::string text);
void printOutput(std::string& text);

Both functions print some text out to the console, but I wanted to handle each case where:

std::string testOutput = "asdf";
output->printOutput(testOutput); // Gives the error as it can use either function

In some cases I may want to:

output->printOutput("asdf"); // Only the first function can be used

Rather new to all this, is there a way I can handle this?

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Are the two functions doing different things besides the output? –  Joachim Pileborg Jan 31 '13 at 10:12

2 Answers 2

up vote 2 down vote accepted

Pass by const reference:

void printOutput(const std::string &text);

Both forms can bind to that, and you shouldn't have to modify what you print.

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I think the OP's question asks how to do things the other way round –  Ivaylo Strandjev Jan 31 '13 at 10:10
    
@IvayloStrandjev, Oh, handle each differently? I might have misinterpreted it, but it seems like this should be good for printing. –  chris Jan 31 '13 at 10:12
    
true. I am not sure I am interpreting the question correctly either, just point out my interpretation. –  Ivaylo Strandjev Jan 31 '13 at 10:19
    
I'm not planning to modify, but I was told that passing by reference would avoid creating a copy and pass the actual argument. Sorry if the question was confusing. Was not sure how to word it. I wanted a function or an overload that could deal with a variable argument and just plain "string" as the argument. Could anyone provide an explanation why using a constant as the parameter solves this or provide a link? –  Kookehs Jan 31 '13 at 22:51
    
@Kookehs, A temporary is allowed to bind to a const reference, as it will cause the temporary to live on past when it normally dies. A named object is also allowed to bind to one, just like a non-const reference, but you can't modify it now, which enforces const-correctness. If you ever need to modify it and still don't want a temporary, you can incorporate a move version that takes an rvalue reference. –  chris Jan 31 '13 at 22:54

Unless you're planning to modify the string passed in by reference, a single

void printOutput(std::string const& text);

will work.

Or are you hoping to do something different in each version?

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