192

I tried this example:

/* itoa example */
#include <stdio.h>
#include <stdlib.h>

int main ()
{
    int i;
    char buffer [33];
    printf ("Enter a number: ");
    scanf ("%d",&i);
    itoa (i,buffer,10);
    printf ("decimal: %s\n",buffer);
    itoa (i,buffer,16);
    printf ("hexadecimal: %s\n",buffer);
    itoa (i,buffer,2);
    printf ("binary: %s\n",buffer);
    return 0;
}

but the example there doesn't work (it says the function itoa doesn't exist).

2
  • 3
    You should give more information, like the exact error message, what compiler you're using, and what OS.
    – Gabe
    Mar 11, 2012 at 13:13
  • my-itoa was already suggested somewhere else on SO.
    – menjaraz
    Mar 11, 2012 at 13:46

3 Answers 3

299

Use sprintf():

int someInt = 368;
char str[12];
sprintf(str, "%d", someInt);

All numbers that are representable by int will fit in a 12-char-array without overflow, unless your compiler is somehow using more than 32-bits for int. When using numbers with greater bitsize, e.g. long with most 64-bit compilers, you need to increase the array size—at least 21 characters for 64-bit types.

4
  • 1
    I tried running this program, and I got a runtime error. How can I get it to work properly? ideone.com/Xl21B4 Mar 6, 2013 at 2:56
  • @AndersonGreen The code here is correct. You typed it incorrectly. The error message tells you where.
    – nschum
    Mar 8, 2013 at 9:31
  • sprintf is discussed here in more detail: stackoverflow.com/questions/8232634/simple-use-of-sprintf-c Mar 8, 2013 at 21:07
  • 11
    Often it's better to use snprintf() to cover situations where you don't know how big str is going to be. (eg multi-byte characters, numbers that represent counters without a limit, etc).
    – gone
    Apr 23, 2014 at 9:21
59

Making your own itoa is also easy, try this :

char* itoa(int i, char b[]){
    char const digit[] = "0123456789";
    char* p = b;
    if(i<0){
        *p++ = '-';
        i *= -1;
    }
    int shifter = i;
    do{ //Move to where representation ends
        ++p;
        shifter = shifter/10;
    }while(shifter);
    *p = '\0';
    do{ //Move back, inserting digits as u go
        *--p = digit[i%10];
        i = i/10;
    }while(i);
    return b;
}

or use the standard sprintf() function.

4
  • 1
    To clarify: do while loops are used instead of while for when i is zero.
    – max
    Feb 21, 2013 at 17:34
  • 3
    There's a bug in this code: it will fail when i = INT_MIN because of the i *= -1 line.
    – kasrak
    Jan 10, 2015 at 19:00
  • 1
    @Max, while tests the condition before the loop start, do while tests the condition after the loop has started.
    – Semirix
    Oct 13, 2015 at 22:51
  • @kasrak How to deal with that case. Is a larger type the only option?
    – user877329
    Oct 2, 2016 at 9:24
49

That's because itoa isn't a standard function. Try snprintf instead.

char str[LEN];
snprintf(str, LEN, "%d", 42);
9
  • 3
  • At least enough to hold the maximum value allowed by the integer type, I guess. Mar 11, 2012 at 13:17
  • 2
    @Gabe I use (CHAR_BIT * sizeof(int) - 1) / 3 + 2, as caf mentioned.
    – cnicutar
    Mar 11, 2012 at 13:19
  • 3
    you don't have to - 1 for snprintf. Mar 11, 2012 at 14:16
  • 3
    snprintf() is safer in that you specify how much input you're taking. Otherwise, If your string has multi-byte characters, or ends up longer than you expected due to large numbers, you can overflow your buffer and crash your program (etc).
    – gone
    Apr 23, 2014 at 9:06

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