396

How do you convert an int (integer) to a string?

I'm trying to make a function that converts the data of a struct into a string to save it in a file.

2

11 Answers 11

402

You can use sprintf to do it, or maybe snprintf if you have it:

char str[ENOUGH];
sprintf(str, "%d", 42);

Where the number of characters (plus terminating char) in the str can be calculated using:

(int)((ceil(log10(num))+1)*sizeof(char))
12
  • 18
    To be sure tat ENOUGH is enough we can do it by malloc(sizeof(char)*(int)log10(num))
    – Hauleth
    Commented Nov 24, 2011 at 13:25
  • 4
    @Hauleth Or even +2, considering that (int)log10(42) is 1. Commented Nov 24, 2011 at 13:34
  • 38
    Or you can calculate it at compile-time: #define ENOUGH ((CHAR_BIT * sizeof(int) - 1) / 3 + 2)
    – caf
    Commented Nov 25, 2011 at 0:31
  • 5
    @hauleth Still +2 instead of +1, even with ceil: ceil(log(100)) = 2.0, not 3. So +1 for the exact-powers-of-10, and another +1 for terminating null. Commented Feb 12, 2015 at 17:23
  • 59
    You do not consider minus sign and locale: thousands separator and grouping. Please do it this way: use int length = snprintf(NULL, 0,"%d",42); to get length, and then alloc length+1 chars for the string. Commented Sep 28, 2015 at 6:10
173

As pointed out in a comment, itoa() is not a standard, so better use the sprintf() approach suggested in the rival answer!


You can use the itoa() function to convert your integer value to a string.

Here is an example:

int num = 321;
char snum[5];

// Convert 123 to string [buf]
itoa(num, snum, 10);

// Print our string
printf("%s\n", snum);

If you want to output your structure into a file there isn't any need to convert any value beforehand. You can just use the printf format specification to indicate how to output your values and use any of the operators from printf family to output your data.

7
  • 61
    itoa is not standard - see e.g. stackoverflow.com/questions/190229/…
    – Paul R
    Commented Nov 24, 2011 at 13:26
  • @SeanRamey This itoa() suffers the same buffer overflow potential as gets(). Commented Sep 1, 2018 at 15:55
  • 2
    itoa is not available in C (C99 at least). it is more available in C++ Commented Mar 27, 2019 at 6:43
  • How to get this without sprintf or itoa? Possibly while writing a custom standard library?
    – S.S. Anne
    Commented Mar 30, 2019 at 2:28
  • 5
    why did you pass argument as 10? Commented Sep 8, 2021 at 11:53
161

The short answer is:

snprintf( str, size, "%d", x );

The longer is: first you need to find out sufficient size. snprintf tells you length if you call it with NULL, 0 as first parameters:

snprintf( NULL, 0, "%d", x );

Allocate one character more for null-terminator.

#include <stdio.h> 
#include <stdlib.h>

int x = -42;
int length = snprintf( NULL, 0, "%d", x );
char* str = malloc( length + 1 );
snprintf( str, length + 1, "%d", x );
...
free(str);

If works for every format string, so you can convert float or double to string by using "%g", you can convert int to hex using "%x", and so on.

8
  • 11
    #include <stdio.h> #include <stdlib.h> Commented Nov 2, 2017 at 19:29
  • @user1821961 Thanks, it should really be mentioned that these header files need to be included.
    – byxor
    Commented Apr 27, 2018 at 19:49
  • 2
    hey, I know this is super old answer, but why "+1" in malloc? is it for the '\0' ? Commented Apr 3, 2021 at 14:34
  • 2
    Yes, +1 is for the '\0'. snprintf returns length not counting the terminating null character, but in second parameter it expects length with terminating null character, so length + 1. Commented Apr 3, 2021 at 19:33
  • 1
    @jinkwon Yes stackoverflow.com/a/35036037/330457
    – Jin Kwon
    Commented Sep 23, 2021 at 14:22
45

After having looked at various versions of itoa for gcc, the most flexible version I have found that is capable of handling conversions to binary, decimal and hexadecimal, both positive and negative is the fourth version found at http://www.strudel.org.uk/itoa/. While sprintf/snprintf have advantages, they will not handle negative numbers for anything other than decimal conversion. Since the link above is either off-line or no longer active, I've included their 4th version below.

(Important Note: This code is GPLv3-licensed, so if you compile something with it, the result must be released under the same terms.)

/**
 * C++ version 0.4 char* style "itoa":
 * Written by Lukás Chmela
 * Released under GPLv3.
 */
char* itoa(int value, char* result, int base) {
    // check that the base if valid
    if (base < 2 || base > 36) { *result = '\0'; return result; }

    char* ptr = result, *ptr1 = result, tmp_char;
    int tmp_value;

    do {
        tmp_value = value;
        value /= base;
        *ptr++ = "zyxwvutsrqponmlkjihgfedcba9876543210123456789abcdefghijklmnopqrstuvwxyz" [35 + (tmp_value - value * base)];
    } while ( value );

    // Apply negative sign
    if (tmp_value < 0) *ptr++ = '-';
    *ptr-- = '\0';
  
    // Reverse the string
    while(ptr1 < ptr) {
        tmp_char = *ptr;
        *ptr--= *ptr1;
        *ptr1++ = tmp_char;
    }
    return result;
}
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  • 9
    Also, this is considerably faster than sprintf. Could be important when dumping large files. Commented Oct 17, 2014 at 8:56
  • 4
    @chux Yes, a compiler could optimize sprintf(str, "%d", 42); as appending two const chars, but that is theory. In practice people don't sprintf const ints and the itoa above is nearly as optimized as it gets. At least you could be 100% sure you would not get orders of magnitude downgrade of a generic sprintf. It would be nice to see whatever counterexample you have in mind, with compiler version and settings. Commented Sep 30, 2015 at 4:52
  • 1
    @Eugene Ryabtsev char str[3]; sprintf(str, "%d", 42); --> MOV #121A,W4, MOV W4,AF4, MOV #2A,W0 = 2A, MOV #0,W4, CALL 105E embedded compiler simple passes the buffer and 42 to a itoa()-like routine. Commented Sep 30, 2015 at 14:32
  • 1
    @chux If it ends in a call, it does not explain much unless we compare the called routine to the routine above (all the way down to no more calls; in assembly, if you like). If you do it as an answer with compiler version and settings, I will upvote it as useful. Commented Oct 1, 2015 at 4:25
  • 3
    It would be good to provide a way to get the output length back. I've done that here: stackoverflow.com/a/52111436/895245 + unit tests. Commented Sep 3, 2018 at 8:00
13

Here's another way.

#include <stdio.h>

#define atoa(x) #x

int main(int argc, char *argv[])
{
    char *string = atoa(1234567890);
    printf("%s\n", string);
    return 0;
}
1
  • 55
    Works only for constants, not for variables.
    – Nakedible
    Commented Feb 3, 2014 at 22:06
9

Converting anything to a string should either 1) allocate the resultant string or 2) pass in a char * destination and size. Sample code below:

Both work for all int including INT_MIN. They provide a consistent output unlike snprintf() which depends on the current locale.

Method 1: Returns NULL on out-of-memory.

#define INT_DECIMAL_STRING_SIZE(int_type) ((CHAR_BIT*sizeof(int_type)-1)*10/33+3)

char *int_to_string_alloc(int x) {
  int i = x;
  char buf[INT_DECIMAL_STRING_SIZE(int)];
  char *p = &buf[sizeof buf] - 1;
  *p = '\0';
  if (i >= 0) {
    i = -i;
  }
  do {
    p--;
    *p = (char) ('0' - i % 10);
    i /= 10;
  } while (i);
  if (x < 0) {
    p--;
    *p = '-';
  }
  size_t len = (size_t) (&buf[sizeof buf] - p);
  char *s = malloc(len);
  if (s) {
    memcpy(s, p, len);
  }
  return s;
}

Method 2: It returns NULL if the buffer was too small.

static char *int_to_string_helper(char *dest, size_t n, int x) {
  if (n == 0) {
    return NULL;
  }
  if (x <= -10) {
    dest = int_to_string_helper(dest, n - 1, x / 10);
    if (dest == NULL) return NULL;
  }
  *dest = (char) ('0' - x % 10);
  return dest + 1;
}

char *int_to_string(char *dest, size_t n, int x) {
  char *p = dest;
  if (n == 0) {
    return NULL;
  }
  n--;
  if (x < 0) {
    if (n == 0) return NULL;
    n--;
    *p++ = '-';
  } else {
    x = -x;
  }
  p = int_to_string_helper(p, n, x);
  if (p == NULL) return NULL;
  *p = 0;
  return dest;
}

[Edit] as request by @Alter Mann

(CHAR_BIT*sizeof(int_type)-1)*10/33+3 is at least the maximum number of char needed to encode the some signed integer type as a string consisting of an optional negative sign, digits, and a null character..

The number of non-sign bits in a signed integer is no more than CHAR_BIT*sizeof(int_type)-1. A base-10 representation of a n-bit binary number takes up to n*log10(2) + 1 digits. 10/33 is slightly more than log10(2). +1 for the sign char and +1 for the null character. Other fractions could be used like 28/93.


Method 3: If one wants to live on the edge and buffer overflow is not a concern, a simple C99 or later solution follows which handles all int.

#include <limits.h>
#include <stdio.h>

static char *itoa_simple_helper(char *dest, int i) {
  if (i <= -10) {
    dest = itoa_simple_helper(dest, i/10);
  }
  *dest++ = '0' - i%10;
  return dest;
}

char *itoa_simple(char *dest, int i) {
  char *s = dest;
  if (i < 0) {
    *s++ = '-';
  } else {
    i = -i;
  }
  *itoa_simple_helper(s, i) = '\0';
  return dest;
}

int main() {
  char s[100];
  puts(itoa_simple(s, 0));
  puts(itoa_simple(s, 1));
  puts(itoa_simple(s, -1));
  puts(itoa_simple(s, 12345));
  puts(itoa_simple(s, INT_MAX-1));
  puts(itoa_simple(s, INT_MAX));
  puts(itoa_simple(s, INT_MIN+1));
  puts(itoa_simple(s, INT_MIN));
}

Sample output

0
1
-1
12345
2147483646
2147483647
-2147483647
-2147483648
2
  • Shouln't it be '0' + x % 10 instead of '0' - x % 10 (to map a binary integer between decimal 0 and decimal 9 to binary ascii encoding)? Commented Feb 1, 2022 at 19:55
  • @étale-cohomology x%10 has the value of [-9 ... 0] as x <= 0, not 0 to 9. '0' - x % 10 is correct. Using the negative side of int avoids UB of i = -i; when i == INT_MIN, which this code never does. Commented Feb 1, 2022 at 19:58
9

If you are using GCC, you can use the GNU extension asprintf function.

char* str;
asprintf(&str, "%i", 12313);
free(str);
1
  • A justification may be: "The sprintf function can be dangerous because it can potentially output more characters than can fit in the allocation size of the string s ... To avoid this problem, you can use snprintf or asprintf" Commented Feb 6, 2023 at 16:43
6

sprintf is returning the bytes and adds a null byte as well:

# include <stdio.h>
# include <string.h>

int main() {
    char buf[1024];
    int n = sprintf( buf, "%d", 2415);
    printf("%s %d\n", buf, n);
}

Output:

2415 4
0
3
/* Function return size of string and convert signed  *
 * integer to ascii value and store them in array of  *
 * character with NULL at the end of the array        */

int itoa(int value, char *ptr)
{
    int count = 0, temp;
    if(ptr == NULL)
        return 0;
    if(value == 0)
    {
        *ptr = '0';
        return 1;
    }

    if(value < 0)
    {
        value* = (-1);
        *ptr++ = '-';
        count++;
    }

    for(temp=value; temp>0; temp/=10, ptr++);
        *ptr = '\0';

    for(temp=value; temp>0; temp/=10)
    {
        *--ptr = temp%10 + '0';
        count++;
    }
    return count;
}
0
0

Improved cnicutar answer.

Include:

#include <math.h> // log10, floor
#include <stdio.h> // sprintf
#include <stdlib.h> // abs

Create your number:

int num = 123;

Calculate length:

size_t len;
if (abs(num)) { // if not zero
    len = floor(log10(abs(num)) + 1); // taking 'round' numbers into account too
    if (num < 0) len++; // add minus sign
} else { // if zero
    len = 1;
}

Then you can store your string as a local variable:

char str[len];
sprintf(str, "%d", num);
// do stuff

or as a pointer:

char *str = malloc(len * sizeof(char));
sprintf(str, "%d", num);
// do stuff
free(str);

Hope that helps!

-4

Use function itoa() to convert an integer to a string

For example:

char msg[30];
int num = 10;
itoa(num,msg,10);
1

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