143

I need to cast only 1 char to string. The opposite way is pretty simple like str[0].

The following did not work for me:

char c = 34;
string(1,c);
//this doesn't work, the string is always empty.

string s(c);
//also doesn't work.

boost::lexical_cast<string>((int)c);
//also doesn't work.
9
  • 3
    Cannot reproduce: coliru.stacked-crooked.com/… – chris Jun 19 '13 at 21:23
  • 11
    What makes you think string(1, c) doesn't work? That's the right way to do this. – templatetypedef Jun 19 '13 at 21:23
  • 1
    Which compiler are you using? What environment. Maybe this is a bug with your compiler. – Maurice Reeves Jun 19 '13 at 21:25
  • libc++abi.dylib: terminate called throwing an exception – weeo Jun 19 '13 at 21:26
  • 3
    @weeo- The error is probably somewhere else in your program. Please post a self-contained, reproducible example that demonstrates the erro so that we can help you figure out what is wrong. – templatetypedef Jun 19 '13 at 21:30
208

All of

std::string s(1, c); std::cout << s << std::endl;

and

std::cout << std::string(1, c) << std::endl;

and

std::string s; s.push_back(c); std::cout << s << std::endl;

worked for me.

5
  • 5
    The shortest way is: string s = “” + c; – doctorram Jan 3 '18 at 19:08
  • 25
    @doctorram NO! 1. the quotation marks you are using are invalid C++; 2. even if you meant s = "" + c it's just UB because it does not mean "concatenate the empty string with the character c", it means "the pointer to some copy of an empty string, advanced by the numeric value of c (which is definitively not what you wanted); 3. if you meant s = ""s + c, it's stilll longer than s{1, c}... (and you would have to write using std::literals; somewhere... – Massa Jan 3 '18 at 19:20
  • 12
    Sorry, I meant: string s = string() + 'a'; – doctorram Jan 4 '18 at 20:49
  • 2
    @doctorram a shorter way is string s = {c}; or string s({c}); or string s{c}; ideone.com/eFZTFY – Remy Lebeau Oct 15 '20 at 21:44
  • I think @RemyLebeau's solution works best when you have to create a string and pass it as an argument to a function in just one line – Nicholas Obert Mar 7 at 18:51
11

I honestly thought that the casting method would work fine. Since it doesn't you can try stringstream. An example is below:

#include <sstream>
#include <string>
std::stringstream ss;
std::string target;
char mychar = 'a';
ss << mychar;
ss >> target;
3
  • 2
    I don't think the fact that this particular string constructor isn't working has anything to do with the real problem. – chris Jun 19 '13 at 21:29
  • 1
    Probably right, but thought I'd offer the easy answer :P – Mallen Jun 21 '13 at 2:55
  • This solution works, however using stringstream (<sstream>) is not necessary since it will include the whole library in the project, slowing down the compilation process. Try to avoid including unnecessary dependencies to your project. – Cristian Feb 24 '20 at 12:47
5

This solution will work regardless of the number of char variables you have:

char c1 = 'z';
char c2 = 'w';
std::string s1{c1};
std::string s12{c1, c2};

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