276

I want to convert a std::string into a char* or char[] data type.

std::string str = "string";
char* chr = str;

Results in: “error: cannot convert ‘std::string’ to ‘char’ ...”.

What methods are there available to do this?

16 Answers 16

575

It won't automatically convert (thank god). You'll have to use the method c_str() to get the C string version.

std::string str = "string";
const char *cstr = str.c_str();

Note that it returns a const char *; you aren't allowed to change the C-style string returned by c_str(). If you want to process it you'll have to copy it first:

std::string str = "string";
char *cstr = new char[str.length() + 1];
strcpy(cstr, str.c_str());
// do stuff
delete [] cstr;

Or in modern C++:

std::vector<char> cstr(str.c_str(), str.c_str() + str.size() + 1);
  • 16
    shudder, manual allocation? – Kerrek SB Sep 8 '11 at 17:35
  • 13
    The answer is bulky, inelegant, non-local, uses raw arrays, and requires attention to exception safety. vector was invented precisely as a wrapper for dynamic arrays, so not using it seems like a missed opportunity at best, and in violation of the spirit of C++ at worst. – Kerrek SB Sep 8 '11 at 20:11
  • 21
    First of all, yes the answer is bulky. First I explain the OP's error (thinking that std::string would automatically convert) and then I explain what he should use, with a short code sample. Thinking forward I also explain some side effects of the use of this function, of which one is that you may not edit the string returned by c_str(). You mistakenly see my short examples as real problem-solving code, which it's not. – orlp Sep 8 '11 at 20:19
  • 8
    I downvoted the answer. This answer is indeed not useful and the fact that it was accepted is most unfortunate. This answer completely disregards good C++ programming practices and exception safety and there are far superior solutions, some of which are given in other answers to this question (e.g. the answer given by ildjarn which uses std::vector<char>). – James McNellis Sep 8 '11 at 20:27
  • 97
    @james-mcnellis, I picked this answer as the correct one because it answered EXACTLY what I was asking for... No more, no less. I did not ask for what you think that I should do, I did not ask for a different solution for what you think that I am doing, I did not ask for good practices. You have no idea what I am working in, where my code is going to be implemented and under what conditions. Some should learn to read, understand questions and to answer what is actually being asked. No need to show off here. – user912695 Sep 9 '11 at 16:19
127

More details here, and here but you can use

string str = "some string" ;
char *cstr = &str[0u];
  • 14
    FWIW, in my book, this is the only correct answer to the question that was actually asked. An std::string is inherently mutable: people who are making it sound like modifying the contents of the string is somehow the devil's work seem to be missing this fact. – Jay Freeman -saurik- Oct 4 '13 at 1:25
  • 2
    yes, this is the correct answer. it's silly that, given the frequency of use, there isn't a standart method to do this, like msoft's lockbuffer. – Erik Aronesty Jan 28 '15 at 17:24
  • I changed 0 to 0u. Because some compilers/libraries will (believe it or not) complain about some ambiguity when warnings are turned all the way on for the &str[0] construct – Erik Aronesty Jan 28 '15 at 18:05
  • I doubt when the str is deleted, the char cstr is made null. So I guess here only a pointer of the string is assigned to the char pointer. So the conversion of string to char is not literally complete. String is only pointed to char* but its value is not converted. Am I correct??? – Samitha Chathuranga Dec 12 '15 at 8:30
  • 1
    Note that this is C++11 only. Previous versions might not have continuous storage or are missing the terminating null – Flamefire Jun 29 '17 at 20:14
36

If I'd need a mutable raw copy of a c++'s string contents, then I'd do this:

std::string str = "string";
char* chr = strdup(str.c_str());

and later:

free(chr); 

So why don't I fiddle with std::vector or new[] like anyone else? Because when I need a mutable C-style raw char* string, then because I want to call C code which changes the string and C code deallocates stuff with free() and allocates with malloc() (strdup uses malloc). So if I pass my raw string to some function X written in C it might have a constraint on it's argument that it has to allocated on the heap (for example if the function might want to call realloc on the parameter). But it is highly unlikely that it would expect an argument allocated with (some user-redefined) new[]!

  • You should explain where strdup is from. – L. F. May 8 at 10:31
21

(This answer applies to C++98 only.)

Please, don't use a raw char*.

std::string str = "string";
std::vector<char> chars(str.c_str(), str.c_str() + str.size() + 1u);
// use &chars[0] as a char*
  • 1
    I actually just needed something like this earlier today. I was wondering, is it OK to say vector<char>(str.c_str(), str.c_str() + str.size() + 1), without assigning the char pointer to a temporary? – Kerrek SB Sep 8 '11 at 17:30
  • 1
    @Kerrek : Yes, the return value of std::basic_string<>::c_str() is valid until the string is changed or destroyed. This also implies that it returns the same value on subsequent calls as long as the string isn't modified. – ildjarn Sep 8 '11 at 17:32
  • 2
    @friendzis : There is no speed or space overhead using vector in this way. And if one were to write exception-safe code without a RAII mechanism (i.e., using raw pointers), the code complexity would be much higher than this simple one-liner. – ildjarn Sep 8 '11 at 17:40
  • 7
    It's a myth that vector has a huge amount of overhead and complexity. If your requirement is that you have a mutable char array, then in fact a vector of chars is pretty much the ideal C++ wrapper. If your requirement actually just calls for a const-char pointer, then just use c_str() and you're done. – Kerrek SB Sep 8 '11 at 17:41
  • 2
    @ildjarn: Actually, it basically was. – Lightness Races in Orbit Jul 10 '13 at 10:00
13
  • If you just want a C-style string representing the same content:

    char const* ca = str.c_str();
    
  • If you want a C-style string with new contents, one way (given that you don't know the string size at compile-time) is dynamic allocation:

    char* ca = new char[str.size()+1];
    std::copy(str.begin(), str.end(), ca);
    ca[str.size()] = '\0';
    

    Don't forget to delete[] it later.

  • If you want a statically-allocated, limited-length array instead:

    size_t const MAX = 80; // maximum number of chars
    char ca[MAX] = {};
    std::copy(str.begin(), (str.size() >= MAX ? str.begin() + MAX : str.end()), ca);
    

std::string doesn't implicitly convert to these types for the simple reason that needing to do this is usually a design smell. Make sure that you really need it.

If you definitely need a char*, the best way is probably:

vector<char> v(str.begin(), str.end());
char* ca = &v[0]; // pointer to start of vector
  • 1
    Why &str.front(), &str.back() (which aren't present in C++03) instead of the more common str.begin() and str.end()? – Armen Tsirunyan Sep 8 '11 at 17:30
  • 2
    @Armen: Who knows?! – Lightness Races in Orbit Sep 8 '11 at 17:33
  • 1
    what about str.begin(), or even std::begin(str), iterator-like? I don't believe string has any obligation to be in contiguous memory like vector, or has it? – xtofl Sep 8 '11 at 17:33
  • 1
    @xtofl: I already edited those in. And yes, as of C++11 there is an obligation; this was implicit in C++03. – Lightness Races in Orbit Sep 8 '11 at 17:34
  • 1
    @Tomalak: They were misused in that you needed &back() + 1, not &back() – Armen Tsirunyan Sep 8 '11 at 17:39
10

This would be better as a comment on bobobobo's answer, but I don't have the rep for that. It accomplishes the same thing but with better practices.

Although the other answers are useful, if you ever need to convert std::string to char* explicitly without const, const_cast is your friend.

std::string str = "string";
char* chr = const_cast<char*>(str.c_str());

Note that this will not give you a copy of the data; it will give you a pointer to the string. Thus, if you modify an element of chr, you'll modify str.

5

Assuming you just need a C-style string to pass as input:

std::string str = "string";
const char* chr = str.c_str();
5

To be strictly pedantic, you cannot "convert a std::string into a char* or char[] data type."

As the other answers have shown, you can copy the content of the std::string to a char array, or make a const char* to the content of the std::string so that you can access it in a "C style".

If you're trying to change the content of the std::string, the std::string type has all of the methods to do anything you could possibly need to do to it.

If you're trying to pass it to some function which takes a char*, there's std::string::c_str().

4

For completeness' sake, don't forget std::string::copy().

std::string str = "string";
const size_t MAX = 80;
char chrs[MAX];

str.copy(chrs, MAX);

std::string::copy() doesn't NUL terminate. If you need to ensure a NUL terminator for use in C string functions:

std::string str = "string";
const size_t MAX = 80;
char chrs[MAX];

memset(chrs, '\0', MAX);
str.copy(chrs, MAX-1);
4

Here is one more robust version from Protocol Buffer

char* string_as_array(string* str)
{
    return str->empty() ? NULL : &*str->begin();
}

// test codes
std::string mystr("you are here");
char* pstr = string_as_array(&mystr);
cout << pstr << endl; // you are here
  • +1 for checking that the string is empty. I would also add a check to make sure that the string is zero terminated: if (str[str.length()-1] != 0) str.push_back(0) – GaspardP Jan 24 '16 at 19:20
3
char* result = strcpy((char*)malloc(str.length()+1), str.c_str());
3

Alternatively , you can use vectors to get a writable char* as demonstrated below;

//this handles memory manipulations and is more convenient
string str;
vector <char> writable (str.begin (), str.end) ;
writable .push_back ('\0'); 
char* cstring = &writable[0] //or &*writable.begin () 

//Goodluck  
  • Looks nice, I'll take a look at it, thanks. – Mario Dec 15 '15 at 17:16
  • This will allocate new memory for the vector and then copy each character. std::string is already a container, you might as well push_back(0) to your string and do &str[0] – GaspardP Jan 24 '16 at 19:19
3

You can make it using iterator.

std::string str = "string";
std::string::iterator p=str.begin();
char* chr = &(*p);

Good luck.

2

This will also work

std::string s;
std::cout<<"Enter the String";
std::getline(std::cin, s);
char *a=new char[s.size()+1];
a[s.size()]=0;
memcpy(a,s.c_str(),s.size());
std::cout<<a;  
2

A safe version of orlp's char* answer using unique_ptr:

std::string str = "string";
auto cstr = std::make_unique<char[]>(str.length() + 1);
strcpy(cstr.get(), str.c_str());
2

Conversion in OOP style

converter.hpp

class StringConverter {
    public: static char * strToChar(std::string str);
};

converter.cpp

char * StringConverter::strToChar(std::string str)
{
    return (char*)str.c_str();
}

usage

StringConverter::strToChar("converted string")
  • I like how the cast to char* eliminates the const from the output of c_str, I think the reason c_str returns const char* is to eliminate potential memory access issues, by providing a read only version of the thing. the OP wants to have a char*, but I think he might be better served by const char* output of c_str instead, since that is safer, and functions that take char* usually take const char* as well (assuming functions don't do anything like changing their inputs, which in general, they shouldn't). – Felipe Valdes Feb 21 at 22:37

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