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I want to copy a string into a char array, and not overrun the buffer.

So if I have a char array of size 5, then I want to copy a maximum of 5 bytes from a string into it.

what's the code to do that?

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1  
std::string, don't know of any other kinds of strings. –  neuromancer May 22 '10 at 19:14
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12 Answers 12

up vote 10 down vote accepted

First of all, strncpy is almost certainly not what you want. strncpy was designed for a fairly specific purpose. It's in the standard library almost exclusively because it already exists, not because it's generally useful.

Probably the simplest way to do what you want is with something like:

sprintf(buffer, "%.4s", your_string.c_str());

Unlike strncpy, this guarantees that the result will be NUL terminated, but does not fill in extra data in the target if the source is shorter than specified (though the latter isn't a major issue when the target length is 5).

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+1 for unique answer. But, isn't this a lot of unnecessary overhead relative to strncpy(buffer, str.c_str(), 4); buffer[4] = '\0';? –  academicRobot May 22 '10 at 19:38
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@academicRobot: Have you tested it, or noticed the difference? :) I'd prefer the sprintf solution, it's a bit more straightforward. Only when performance is lacking would I profile, maybe find this to be a problem, test it with strncpy, and maybe find it works better. –  GManNickG May 22 '10 at 19:46
13  
Prefer the safe version, snprintf, which lets you specify the target buffer size. –  jweyrich May 22 '10 at 19:48
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@academicRobot: In general case whether strncpy is faster or slower will depend on the relative sizes of the source string and the target buffer. Since strncpy does lots of wasted work in case of a large buffer, in general case misused strncpy is not only slower, but catastropically slower, orders of magnitude slower. The only thing that saves the day in this example is unrealistically small target buffer (only 5 chars). –  AndreyT May 22 '10 at 20:36
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@NicolBolas: This predates C++11, so snprintf was not part of C++ at the time. Even so, specifying the precision as done here limits the amount of data that can be written to the buffer, preventing buffer overruns (short of your specifying a size larger than the buffer -- and if you do that, snprintf won't prevent a buffer overrun either. –  Jerry Coffin Mar 9 '13 at 5:01
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This is exactly what std::string's copy function does.

#include <string>
#include <iostream>

int main()
{

    char test[5];
    std::string str( "Hello, world" );

    str.copy(test, 5);

    std::cout.write(test, 5);
    std::cout.put('\n');

    return 0;
}

If you need null termination you should do something like this:

str.copy(test, 4);
test[4] = '\0';
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+1: For using std::string to do the legwork. –  Johnsyweb May 23 '10 at 9:24
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Use function strlcpy if your implementation provides one (the function is not in the standard C library), yet it is rather widely accepted as a de-facto standard name for a "safe" limited-length copying function for zero-terminated strings.

If your implementation does not provide strlcpy function, implement one yourself. For example, something like this might work for you

char *my_strlcpy(char *dst, const char *src, size_t n)
{
  assert(dst != NULL && src != NULL);

  if (n > 0)
  {
    char *pd;
    const char *ps;

    for (--n, pd = dst, ps = src; n > 0 && *ps != '\0'; --n, ++pd, ++ps)
      *pd = *ps;

    *pd = '\0';
  }

  return dst;
}

(Actually, the de-facto accepted strlcpy returns size_t, so you might prefer to implement the accepted specification instead of what I did above).

Beware of the answers that recommend using strncpy for that purpose. strncpy is not a safe limited-length string copying function and is not supposed to be used for that purpose. While you can force strncpy to "work" for that purpose, it is still akin to driving woodscrews with a hammer.

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Some nice libc versions provide non-standard but great replacement for strcpy(3)/strncpy(3) - strlcpy(3).

If yours doesn't, the source code is freely available here from the OpenBSD repository.

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Update: Thought I would try to tie together some of the answers, answers which have convinced me that my own original knee-jerk strncpy response was poor.

First, as AndreyT noted in the comments to this question, truncation methods (snprintf, strlcpy, and strncpy) are often not a good solution. Its often better to check the size of the string string.size() against the buffer length and return/throw an error or resize the buffer.

If truncation is OK in your situation, IMHO, strlcpy is the best solution, being the fastest/least overhead method that ensures null termination. Unfortunately, its not in many/all standard distributions and so is not portable. If you are doing a lot of these, it maybe worth providing your own implementation, AndreyT gave an example. It runs in O(result length). Also the reference specification returns the number of bytes copied, which can assist in detecting if the source was truncated.

Other good solutions are sprintf and snprintf. They are standard, and so are portable and provide a safe null terminated result. They have more overhead than strlcpy (parsing the format string specifier and variable argument list), but unless you are doing a lot of these you probably won't notice the difference. It also runs in O(result length). snprintf is always safe and that sprintf may overflow if you get the format specifier wrong (as other have noted, format string should be "%.<N>s" not "%<N>s"). These methods also return the number of bytes copied.

A special case solution is strncpy. It runs in O(buffer length), because if it reaches the end of the src it zeros out the remainder of the buffer. Only useful if you need to zero the tail of the buffer or are confident that destination and source string lengths are the same. Also note that it is not safe in that it doesn't necessarily null terminate the string. If the source is truncated, then null will not be appended, so call in sequence with a null assignment to ensure null termination: strncpy(buffer, str.c_str(), BUFFER_LAST); buffer[BUFFER_LAST] = '\0';

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@academicRobot: In general case whether strncpy is faster or slower will depend on the relative sizes of the source string and the target buffer. Since strncpy does lots of wasted work in case of a large buffer, in general case misused strncpy is not only slower, but catastropically slower, orders of magnitude slower. The only thing that saves the day in this example is unrealistically small target buffer (only 5 chars). –  AndreyT May 22 '10 at 20:38
    
@academicRobot: You also skewed the test results by insisting on a source string that is known to be longer than the buffer. Testing for such string alone is absolutely meaningless. –  AndreyT May 22 '10 at 20:40
    
Finally, your conclusion is totally bogus. sprintf/snprintf is indeed not the most efficient function for obvious reasons. But that only means that one has to prefer using a strlcpy-like function, not the virtually useless strncpy. Finally, the importance of performance in a truncation-enabled string copying context is another issue. String truncation seen as something acceptable usually indicated user-interface application. Who needs performance in user interface? –  AndreyT May 22 '10 at 20:43
    
@AndreyT Thank you sir, may I please have another! :) You are right on every point, except I won't concede the last (just for user interfaces, really?!?!). But using an strlcpy like function is probably the best option. –  academicRobot May 22 '10 at 21:31
    
Well, think of it: you copy a string and you agree to lose a portion of that string (if it's too long). I.e. the data you copy gets distorted/corrupted/damaged/truncated (choose to your taste). In which context can this be acceptable? They only context I can come up with is a user-interface one: you tell user something very long and that something doesn't suffer much if you cut it a bit (like a list of errors, for example, when just the first one is enough). Can you come up with another context when the truncated data is OK? –  AndreyT May 22 '10 at 21:56
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std::string my_string("something");
char* my_char_array = new char[5];
strncpy(my_char_array, my_string.c_str(), 4);
my_char_array[4] = '\0'; // my_char_array contains "some"

With strncpy, you can copy at most n characters from the source to the destination. However, note that if the source string is at most n chars long, the destination will not be null terminated; you must put the terminating null character into it yourself.

A char array with a length of 5 can contain at most a string of 4 characters, since the 5th must be the terminating null character. Hence in the above code, n = 4.

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std::string str = "Your string";
char buffer[5];
strncpy(buffer, str.c_str(), sizeof(buffer)); 
buffer[sizeof(buffer)-1] = '\0';

The last line is required because strncpy isn't guaranteed to NUL terminate the string (there has been a discussion about the motivation yesterday).

If you used wide strings, instead of sizeof(buffer) you'd use sizeof(buffer)/sizeof(*buffer), or, even better, a macro like

#define ARRSIZE(arr)    (sizeof(arr)/sizeof(*(arr)))
/* ... */
buffer[ARRSIZE(buffer)-1]='\0';
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If you always have a buffer of size 5, then you could do:

std::string s = "Your string";
char buffer[5]={s[0],s[1],s[2],s[3],'\0'};

Edit: Of course, assuming that your std::string is large enough.

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This does not scale at all to buffers of arbitrary size. –  Adam Rosenfield May 23 '10 at 19:57
    
Right. That's why I wrote "always have a buffer of size 5". –  user153062 May 24 '10 at 18:43
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So we've got this:

std::string sz = "Hello, world!"
char ch[5];

Now, just do a simple:

ch = sz.substr(0, 5-1).c_str();

And now:

// ch = "Hell";

:)

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char mystring[101]; // a 100 character string plus terminator
char *any_input;
any_input = "Example";
iterate = 0;
while ( any_input[iterate] != '\0' && iterate < 100) {
    mystring[iterate] = any_input[iterate];
    iterate++;
}
mystring[iterate] = '\0';

This is the basic efficient design.

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i think snprintf() is much safe and simlest

snprintf ( buffer, 100, "The half of %d is %d", 60, 60/2 );

null character is append it end automatically :)

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void stringChange(string var){

    char strArray[100];
    strcpy(strArray, var.c_str()); 

}

I guess this should work. it'll copy form string to an char array.

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