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I have an application in which I need to combine strings within a variable like so:

int int_arr[4];
int_arr[1] = 123;
int_arr[2] = 456;
int_arr[3] = 789;
int_arr[4] = 10;
std::string _string = "Text " + int_arr[1] + " Text " + int_arr[2] + " Text " + int_arr[3] + " Text " + int_arr[4];

It gives me the compile error

Error C2210: '+' Operator cannot add pointers" on the second string of the expression.

As far as I can tell I am combining string literals and integers, not pointers.

Is there another concatenation operator that I should be using? Or is the expression just completely wrong and should figure out another way to implement this?

BTW I am using Visual Studio 2010

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OK I at least figured out why it is a pointer: this code is from inside a function and the integer array is a argument passed to it –  Nate Koppenhaver Feb 3 '11 at 4:01
    
No, the pointer it's complaining about is the string. –  paxdiablo Feb 3 '11 at 4:09
    
The pointer is the char*, specifically the "Text ". The C++ compiler treats any literal string as a C-style string, which in reality is just an array of char. And since arrays in C are represented as pointers, "Text " is a char*. –  chrisaycock Feb 3 '11 at 4:09
1  
@chrisay: You were fine up until you said arrays are pointers. They not pointers, they are arrays and pointers are pointers, that's it. Two different things. Arrays, however, are implicitly convertible to pointers to the first element. –  GManNickG Feb 3 '11 at 4:13

4 Answers 4

up vote 2 down vote accepted

You can do this in Java since it uses the toString() method automatically on each part.

If you want to do it the same way in C++, you'll have to explicitly convert those integer to strings in order for this to work.

Something like:

#include <iostream>
#include <sstream>

std::string intToStr (int i) {
    std::ostringstream s;
    s << i;
    return s.str();
}

int main (void) {
    int var = 7;
    std::string s = "Var is '" + intToStr(var) + "'";
    std::cout << s << std::endl;
    return 0;
}

Of course, you can just use:

    std::ostringstream os;
    os << "Var is '" << var << "'";
    std::string s = os.str();

which is a lot easier.

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2  
No you don't. The idiomatic solution in C++ is to use iostream facilities. –  Marcelo Cantos Feb 3 '11 at 3:59
    
... which is explicitly converting them, the same as you do in your answer. –  paxdiablo Feb 3 '11 at 4:04
    
Now it highlights the first '+' and says "No operator matches these operands" –  Nate Koppenhaver Feb 3 '11 at 4:05
    
I'd check again, @Nate, it works fine in gcc and I'm pretty certain it follows ISO, although whether Microsoft follows ISO, I can't say :-) –  paxdiablo Feb 3 '11 at 4:10
    
What I tried was converting the int to a string like 'std::string _STR[4]; _STR[1] = int_arr[1]; _STR[2] = int_arr[2]; _STR[3] = int_arr[3]; _STR[4] = int_arr[4];' –  Nate Koppenhaver Feb 3 '11 at 4:11

A string literal becomes a pointer in this context. Not a std::string. (Well, to be pedantically correct, string literals are character arrays, but the name of an array has an implicit conversion to a pointer. One predefined form of the + operator takes a pointer left-argument and an integral right argument, which is the best match, so the implicit conversion takes place here. No user-defined conversion can ever take precedence over this built-in conversion, according to the C++ overloading rules.).

You should study a good C++ book, we have a list here on SO.

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2  
No, a string literal is an array of characters which decays into a pointer to the first element. –  Adam Rosenfield Feb 3 '11 at 4:00
    
@Adam: My edit and your comment crossed paths somewhere out there... –  Ben Voigt Feb 3 '11 at 4:02
1  
-1 "A string literal IS a pointer." it isn't, it's an array –  Cheers and hth. - Alf Feb 3 '11 at 6:43
    
@Alf: Did you read my ENTIRE answer, including the parenthesized part, before downvoting? –  Ben Voigt Feb 3 '11 at 14:48
    
@Ben: sorry no i didn't. But I'd still downvote, since it's incorrect and misleading info first. But you're in good company, so to speak, or at least, what was formerly good company, because MIT's Open University courseware for C++ programming does or did the same. However, it tried to go overboard in committing most errors per page of any course where-so-ever. But anyway, please don't perpetuate that particular misconception: it does so much harm. Plus, about + is incorrect: should be built-in +. Cheers, –  Cheers and hth. - Alf Feb 3 '11 at 14:51

Neither C nor C++ allow concatenation of const char * and int. Even C++'s std::string, doesn't concatenate integers. Use streams instead:

std::stringstream ss;
ss << "Text " << int_arr[1] << " Text " << int_arr[2] << " Text " << int_arr[3] << " Text " << int_arr[4];
std::string _string = ss.str();
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1  
Note however that with const char* p; int i;, p + i is perfectly well-defined. It's just that + doesn't mean concatenation. –  Ben Voigt Feb 3 '11 at 5:33

A string literal is an expression returning a pointer const char*.

std::stringstream _string_stream;
_string_stream << "Text " << int_arr[1] << " Text " << int_arr[2] << " Text " << int_arr[3] << " Text " << int_arr[4];
std::string _string = _string_stream.str();
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1  
A string literal is an array, not a pointer. –  GManNickG Feb 3 '11 at 4:13
    
When I put that in it doesn't compile I get an 'Incomplete type is not allowed' error on the _string_stream stringstream. –  Nate Koppenhaver Feb 3 '11 at 4:17
    
@Nate: That's because you haven't included the relevant header, #include <sstream>. –  Marcelo Cantos Feb 3 '11 at 5:55
1  
-1 "A string literal is in fact a pointer" it isn't, it's an array –  Cheers and hth. - Alf Feb 3 '11 at 6:43
1  
@vzo: no, it's because any array expression decays to pointer type where a pointer type is expected, i.e. including in this particular context. In some other contexts it does not decay. THat include, for example, a sizeof expression (important to understand). Cheers & hth., –  Cheers and hth. - Alf Feb 3 '11 at 14:57

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