86

I would like to convert string to char array but not char*. I know how to convert string to char* (by using malloc or the way I posted it in my code) - but that's not what I want. I simply want to convert string to char[size] array. Is it possible?

#include <iostream>
#include <string>
#include <stdio.h>
using namespace std;

int main()
{
    // char to string
    char tab[4];
    tab[0] = 'c';
    tab[1] = 'a';
    tab[2] = 't';
    tab[3] = '\0';
    string tmp(tab);
    cout << tmp << "\n";

    // string to char* - but thats not what I want

    char *c = const_cast<char*>(tmp.c_str());
    cout << c << "\n";

    //string to char
    char tab2[1024];
    // ?

    return 0;
}

10 Answers 10

108

Simplest way I can think of doing it is:

string temp = "cat";
char tab2[1024];
strcpy(tab2, temp.c_str());

For safety, you might prefer:

string temp = "cat";
char tab2[1024];
strncpy(tab2, temp.c_str(), sizeof(tab2));
tab2[sizeof(tab2) - 1] = 0;

or could be in this fashion:

string temp = "cat";
char * tab2 = new char [temp.length()+1];
strcpy (tab2, temp.c_str());
  • 9
    The catch with strncpy is that it won't null-terminate if it reaches the size before it finds a null in the source string. Gotta be careful with that too! – Fred Larson Nov 8 '12 at 17:15
  • 1
    Yes, I think that's a reasonable way to handle it. – Fred Larson Nov 8 '12 at 17:17
  • 1
    strncpy is for safety in that strncpy will not overrun the buffer you give it. Also strcpy_s is not in C99, but it has recently been added in C11. – bames53 Nov 8 '12 at 17:36
  • 5
    I love the way people abuse the word safety... oh, there's not enough room for the string, so let's truncate it.. oh, we accidentally removed the info about the patient's life threatening drug allergy.. but we don't have a buffer overrun anymore. well, I guess it's safe... – Karoly Horvath May 15 '15 at 14:06
  • 3
    @KarolyHorvath - safety in different domains. Obviously, you need to check your functional requirements and Not Do Stupid Things. But if you overrun the buffer you lose any guarantee of knowing what will happen. Correct coding ensures the program is "safe" to run on your OS. Correct thinking ensures the program is "safe" at doing what the user needs. – Chowlett Jun 17 '15 at 11:11
50

Ok, i am shocked that no one really gave a good answer, now my turn. There are two cases;

  1. A constant char array is good enough for you so you go with,

    const char *array = tmp.c_str();
    
  2. Or you need to modify the char array so constant is not ok, then just go with this

    char *array = &tmp[0];
    

Both of them are just assignment operations and most of the time that is just what you need, if you really need a new copy then follow other fellows answers.

  • 6
    He wants a char array, not a char * – harogaston Oct 8 '15 at 0:02
  • 8
    The pointer he created is the same thing as a char array. An array variable in C and C++ is just a pointer to the first element in the array. – Justin C. B. Jun 1 '17 at 17:39
  • @JustinC.B. not really! array variables might decay into pointers but they are not same in C++. e.g. std::size(elem) in C++ is well defined when elem is a char array but it fails to compile when elem is a char* or const char*, you can see it at here – aniliitb10 Jan 15 at 19:27
15

Easiest way to do it would be this

std::string myWord = "myWord";
char myArray[myWord.size()+1];//as 1 char space for null is also required
strcpy(myArray, myWord.c_str());
  • 10
    Array size must be a compile-time constant in C++. – interjay Mar 16 '14 at 10:17
  • 3
    Works with C++11 – Sid Sarasvati May 1 '14 at 0:52
9
str.copy(cstr, str.length()+1); // since C++11
cstr[str.copy(cstr, str.length())] = '\0';  // before C++11
cstr[str.copy(cstr, sizeof(cstr)-1)] = '\0';  // before C++11 (safe)

It's a better practice to avoid C in C++, so std::string::copy should be the choice instead of strcpy.

6

Just copy the string into the array with strcpy.

5

Try this way it should be work.

string line="hello world";
char * data = new char[line.size() + 1];
copy(line.begin(), line.end(), data);
data[line.size()] = '\0'; 
4

Try strcpy(), but as Fred said, this is C++, not C

2

You could use strcpy(), like so:

strcpy(tab2, tmp.c_str());

Watch out for buffer overflow.

1

If you don't know the size of the string beforehand and it can vary wildly, you can get a dynamically allocated fixed-size array with the array overload of unique_ptr:

auto tab2 = std::make_unique<char[]>(temp.size() + 1);
std::strcpy(tab2.get(), temp.c_str());

Note that you don't need strncpy here as the array is allocated to be sufficiently large in the first place.

0

Well I know this maybe rather dumb than and simple, but I think it should work:

string n;
cin>> n;
char b[200];
for (int i = 0; i < sizeof(n); i++)
{
    b[i] = n[i];
    cout<< b[i]<< " ";
}
  • Well, not really. You're just assuming that n can't be larger than b. It would crash if n>b. Better to use the strcpy function already provided. Edit: At some cases it might be even better to use strcpy_s as it adds check for NULL pointers (if your platform supports it) – droidballoon Sep 30 '17 at 19:24

protected by Community Apr 14 '16 at 16:17

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