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everybody I have problem with string concatenation in C++, here is my code

map<double, string> fracs;
for(int d=1; d<=N; d++)
    for(int n=0; n<=d; n++)            
        if(gcd(n, d)==1){
            string s = n+"/"+d;// this does not work in C++ but works in Java
            fracs.insert(make_pair((double)(n/d), s));
            }

How can I fix my code?

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2  
Commencing psychic reading, please wait... ERROR: Could not read OP's mind. Post the goddamn error. –  the_drow Jun 16 '11 at 7:21
1  
It is already discussed in : stackoverflow.com/questions/191757/c-concatenate-string-and-int –  Talha Ahmed Khan Jun 16 '11 at 7:22
    
i would like to get map<double, string> where double is the value of fraction (n/d) and string is ("n/d"), then I want to print it to file –  torayeff Jun 16 '11 at 7:22
1  
@phresnel and @the_drow The source of the error is as obvious as it can be. The OP even commented the line. Maybe the problem is on your end? –  Paul Manta Jun 16 '11 at 7:24
    
@Paul: Right, mea culpa. –  phresnel Jun 16 '11 at 7:38
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8 Answers

Try like this.

stringstream os;
os << n << "/" << d;
string s =os.str();
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Is this save against buffer overflow attacks ? –  kiltek Mar 9 '13 at 13:29
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In C++ you have to convert an int to a string before you can concatenate it with another string using the + operator.

See Easiest way to convert int to string in C++.

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You don't have to when you pass non-string types to output streams (they will do the conversion for you). –  phresnel Jun 16 '11 at 7:23
    
True. But no streams in the OP's question... –  Assaf Lavie Jun 16 '11 at 7:24
    
But concatenation. And the canonical C++ way of concatenating non-string values is with streams. –  phresnel Jun 16 '11 at 7:31
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Use streams, in your case, a stringstream:

#include <sstream>
...
    std::stringstream ss;
    ss << n << '/' << d;

Later, when done with your work, you can store it as an ordinary string:

const std::string s = ss.str();

Important (side-) note: Never do

const char *s = ss.str().c_str();

stringstream::str() produces a temporary std::string, and according to the standard, temporaries live until the end of the expression. Then, std::string::c_str() gives you a pointer to a null-terminated string, but according to The Holy Law, that C-style-string becomes invalid once the std::string (from which you receved it) changes.

It might work this time, and next time, and even on QA, but explodes right in the face of your most valuable customer.

The std::string must survive until the battle is over:

const std::string s = ss.str(); // must exist as long as sz is being used
const char *sz = s.c_str();
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n and d are integers. Here is how you can convert integer to string:

std::string s;
std::stringstream out;
out << n << "/" << d;
s = out.str();
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You could use a stringstream.

stringstream s;
s << n << "/" << d;
fracs.insert(make_pair((double)n/d, s.str()));
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No one has suggested it yet but you can also take a look at boost::lexical_cast<>.

While this method is sometimes criticized because of performance issues, it might be ok in your situation, and it surely makes the code more readable.

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Unlike in Java, in C++ there is no operator+ that explicitly converts a number to a string. What is usually done in C++ in cases like this is...

#include <sstream>

stringstream ss;
ss << n << '/' << d; // Just like you'd do with cout
string s = ss.str(); // Convert the stringstream to a string
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thank all of you –  torayeff Jun 16 '11 at 7:29
    
@torayeff: go ahead, vote up, and accept an answer –  phresnel Jun 16 '11 at 7:35
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I think sprintf(), which is a function used to send formatted data to strings, would be a much clearer way to do it. Just the way you would use printf, but with the c-style string type char* as a first(additional) argument:

char* temp;
sprint(temp, "%d/%d", n, d);
std::string g(temp);

You could check it out at http://www.cplusplus.com/reference/cstdio/sprintf/

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