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C# has a syntax feature where you can concatenate many data types together on 1 line.

string s = new String();
s += "Hello world, " + myInt + niceToSeeYouString;
s += someChar1 + interestingDecimal + someChar2;

What would be the equivalent in C++? As far as I can see, you'd have to do it all on separate lines as it doesn't support multiple strings/variables with the + operator. This is OK, but doesn't look as neat.

string s;
s += "Hello world, " + "nice to see you, " + "or not.";

The above code produces an error.

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10 Answers 10

up vote 75 down vote accepted
#include <sstream>
#include <string>

std::stringstream ss;
ss << "Hello, world, " << myInt << niceToSeeYouString;
std::string s = ss.str();

Take a look at this Guru Of The Week article from Herb Sutter: The String Formatters of Manor Farm

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18  
Maybe I'm missing something, but that's not in one line... –  Lohoris Mar 19 '12 at 16:50
1  
Try this: std::string s = static_cast<std::ostringstream&>(std::ostringstream().seekp(0) << "HelloWorld" << myInt << niceToSeeYouString).str(); –  CaffeineAddict Jan 7 '13 at 2:12
5  
@Lohoris: it's the concatenation that happens on a single line... –  Paolo Tedesco Jan 7 '13 at 9:51
5  
ss << "Wow, string concatenation in C++ is impressive" << "or not." –  joaerl Jan 24 '14 at 9:21
    
@Lohoris This can be made a true one-liner using a variadic template. See my answer below. –  SebastianK Jun 2 '14 at 12:34
s += "Hello world, " + "nice to see you, " + "or not.";

Those character array literals are not C++ std::strings - you ned to convert them:

s += string("Hello world, ") + string("nice to see you, ") + string("or not.");

To convert ints (or any other streamable type) you can use a boost lexical_cast or provide your own function:

template <typename T>
string Str( const T & t ) {
   ostringstream os;
   os << t;
   return os.str();
}

You can now say things like:

string s = "The meaning is " + Str( 42 );
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3  
You only need to explicitly convert the first one: s += string("Hello world,") + "nice to see you, " + "or not."; –  Ferruccio Mar 19 '09 at 16:28
3  
Yes, but I couldn't face explaining why! –  anon Mar 19 '09 at 16:31
1  
boost::lexical_cast - nice and similar on your Str function:) –  bayda Mar 19 '09 at 16:40

boost::format

or std::stringstream

std::stringstream msg;
msg << "Hello world, " << myInt  << niceToSeeYouString;
msg.str(); // returns std::string object
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+1 for boost::format –  Marcin Mar 19 '09 at 18:50

You would have to define operator+() for every data type you would want to concenate to the string, yet since operator<< is defined for most types, you should use std::stringstream.

Damn, beat by 50 seconds...

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1  
You can't actually define new operators on built-in types like char and int. –  Tyler McHenry Mar 19 '09 at 16:29

Your code can be written as1,

s = "Hello world," "nice to see you," "or not."

...but I doubt that's what you're looking for. In your case, you are probably looking for streams:

std::stringstream ss;
ss << "Hello world, " << 42 << "nice to see you.";
std::string s = ss.str();

1 "can be written as" : This only works for string literals. The concatenation is done by the compiler.

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4  
Your 1st example is worth mentioning, but please also mention that it works only for "concatenating" literal strings (the compiler performs the concatenation itself). –  j_random_hacker Mar 19 '09 at 16:32
1  
The first example came up at work today, I had forgotten about it! –  kbyrd Oct 29 '12 at 22:12
    
The first example triggered an error for me if a string was previously declared as e.g. const char smthg[] = "smthg" :/ Is it a bug? –  Hi-Angel Feb 19 at 11:36

This works for me:

#include <iostream>

using namespace std;

#define CONCAT2(a,b)     string(a)+string(b)
#define CONCAT3(a,b,c)   string(a)+string(b)+string(c)
#define CONCAT4(a,b,c,d) string(a)+string(b)+string(c)+string(d)

#define HOMEDIR "c:\\example"

int main()
{

    const char* filename = "myfile";

    string path = CONCAT4(HOMEDIR,"\\",filename,".txt");

    cout << path;
    return 0;
}

Output:

c:\example\myfile.txt
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2  
A kitten cries every time someone uses macros for something more complex than code guards or constants :P –  Rui Marques May 21 '14 at 15:08
    
Beside unhappy kittens: For each argument a string object is created which is not necessary. –  SebastianK Jun 2 '14 at 13:56

To offer a solution that is more one-line-ish: You can write

std::string s = concatenate("Hello, ", 42, " I concatenate", anyStreamableType);

with the following implementation of concatenate:

void addToStream(std::stringstream& /*a_stream*/)
{
}

template<typename T, typename... Args>
void addToStream(std::stringstream& a_stream, const T& a_value, Args... a_args)
{
    a_stream << a_value;
    addToStream(a_stream, a_args...);
}

template<typename... Args>
std::string concatenate(Args... a_args)
{
    std::stringstream s;
    addToStream(s, a_args...);
    return s.str();
}
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Using C++14 user defined literals and std::to_string the code becomes easier.

using namespace std::literals::string_literals;
std::string str;
str += "Hello World, "s + "nice to see you, "s + "or not"s;
str += "Hello World, "s + std::to_string(my_int) + other_string;

Note that concatenating string literals can be done at compile time. Just remove the +.

str += "Hello World, " "nice to see you, " "or not";
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You may use this header for this regard: https://github.com/theypsilon/concat

using namespace concat;

assert(concat(1,2,3,4,5) == "12345");

Under the hood you will be using a std::ostringstream.

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In 5 years nobody has mentioned .append?

#include <string>

std::string s;
s.append("Hello world, ");
s.append("nice to see you, ");
s.append("or not.");
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Because it is cumbersome with comparison to just adding a text in one line. –  Hi-Angel Feb 19 at 11:46

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