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Can I arbitrarily write an operator+() function for C++'s string class so I don't have to use <sstream> to concatenate strings?

For example, instead of doing

someVariable << "concatenate" << " this";

Can I add an operator+() so I can do

someVariable = "concatenate" + " this";

?

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3  
+ operator by default concatenates std::string. What new are you trying to do? operator + documentation –  Mahesh Nov 4 '11 at 1:32
    
Aaah. I missed that. That didn't show up in any of the top results for "c++ concatenate string". So does that work with literals? –  trusktr Nov 4 '11 at 1:49
    
No. For the + operator to work at least one operand must be of type std::string. In your case both are of type const char* as @AusCBloke said. –  Mahesh Nov 4 '11 at 1:53
    
Hmmmm... Can I create an operator+() function to add literals together? (I'm guessing that I can!) –  trusktr Nov 4 '11 at 1:59
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1 Answer

up vote 15 down vote accepted

The std::string operator+ does concatenate two std::strings. Your problem however is that "concatenate" and "this" aren't two std::strings; they're of type const char [].

If you want to concatenate the two literals "concatenate" and "this" for whatever reason (usually so you can split strings over multiple lines) you do:

string someVariable = "concatenate" " this";

And the compiler will realise that you actually want string someVariable = "concatenate this";


If "concatenate" and "this" were stored in std::strings then the following is valid:

string s1 = "concatenate";
string s2 = " this";

string someVariable = s1 + s2;

OR

string s1 = "concatenate";

string someVariable = s1 + " this";

Or even

string someVariable = string("concatenate") + " this";

Where " this" will be automatically converted into an std::string object when operator+ is invoked. For this conversion to take place at least one of the operands must be of type std::string.

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@NicolBolas thanks for the edit, I was thinking of adding that one in. –  AusCBloke Nov 4 '11 at 1:49
    
Oh, ok, I think I get it: the operator+ only works when there is at LEAST one std::string being "added" with a literal. Does it work if I do string someVariable = s1 + " this" + " that";? (I also updated my question.) –  trusktr Nov 4 '11 at 1:53
    
@trusktr yes it does, because the statement is equated from left to right, ie. (s1 + " this") + " that";. So " this" will be concatenated to the result of (s1 + " this"), which is of type std::string. –  AusCBloke Nov 4 '11 at 1:55
    
So if I do string someVariable = " this" + " that" + s1; then it won't work? –  trusktr Nov 4 '11 at 1:56
1  
@trusktr, sorry - you can't override operator+ for built-in types, which includes pointers and char arrays. The type is determined by the left-hand operand. –  Mark Ransom Nov 4 '11 at 2:04
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