49

How can I convert an integer to a hexadecimal string in C?

Example: The integer 50 would be converted to the hexadecimal string "32" or "0x32".

0

7 Answers 7

54

This code

int a = 5;
printf("%x\n", a);

prints

5

This code

int a = 5; 
printf("0x%x\n", a);

prints

0x5

This code

int a = 89778116;
printf("%x\n", a);

prints

559e7c4

If you capitalize the x in the format it capitalizes the hex value:

int a = 89778116;
printf("%X\n", a);

prints

559E7C4

If you want to print pointers you use the p format specifier:

char* str = "foo";
printf("0x%p\n", str);

prints

0x01275744
4
  • 3
    I would recommend using the # modifier instead of writing your own 0x, especially with %p whose behavior is implementation-defined and might already include the 0x for you. Aug 12, 2010 at 3:34
  • 2
    Might want to mention snprintf, too.
    – strager
    Aug 12, 2010 at 4:25
  • 1
    Also, the format of your answer is confusing with the alternating blocks. It may be useful to have just one code block with the results as comments after the statement.
    – strager
    Aug 12, 2010 at 4:26
  • @R.. Note that with #, the "0x" is not pre-pended when the value is 0. printf("%#X\n", 0); --> 0. IMO, printf("0x%X\n", a); is worthy, keeping the x as lower case and A-F as upper. 0x559E7C4 Jun 15, 2017 at 15:57
26

The following code takes an integer and makes a string out of it in hex format:

int  num = 32424;
char hex[5];

sprintf(hex, "%x", num);
puts(hex);

gives

7ea8
21

Usually with printf (or one of its cousins) using the %x format specifier.

3
  • You may want to at least give the signature or a link to a man page for strtol.
    – strager
    Aug 12, 2010 at 4:28
  • 3
    strtol() is the opposite of what he asked for. That goes the wrong direction. Feb 25, 2017 at 18:43
  • You can use %X for an upper case output.
    – user330606
    Apr 12, 2020 at 20:20
15

Interesting that these answers utilize printf like it is a given. printf converts the integer to a Hexadecimal string value.

//*************************************************************
// void prntnum(unsigned long n, int base, char sign, char *outbuf)
// unsigned long num = number to be printed
// int base        = number base for conversion;  decimal=10,hex=16
// char sign       = signed or unsigned output
// char *outbuf   = buffer to hold the output number
//*************************************************************

void prntnum(unsigned long n, int base, char sign, char *outbuf)
{

    int i = 12;
    int j = 0;

    do{
        outbuf[i] = "0123456789ABCDEF"[num % base];
        i--;
        n = num/base;
    }while( num > 0);

    if(sign != ' '){
        outbuf[0] = sign;
        ++j;
    }

    while( ++i < 13){
       outbuf[j++] = outbuf[i];
    }

    outbuf[j] = 0;

}
3
  • 12
    missing num variable
    – albttx
    Oct 31, 2016 at 17:36
  • 1
    You don't check for a base > 16. It should at least be in the header. Also, I think you can leave the sign to the caller May 18, 2017 at 22:04
  • 2
    You have to replace variable num by n in order to make this script work.
    – secavfr
    Jul 29, 2018 at 20:27
3

I made a librairy to make Hexadecimal / Decimal conversion without the use of stdio.h. Very simple to use :

char* dechex (int dec);

This will use calloc() to to return a pointer to an hexadecimal string, this way the quantity of memory used is optimized, so don't forget to use free()

Here the link on github : https://github.com/kevmuret/libhex/

1

To convert an integer to a string also involves char array or memory management.

To handle that part for such short arrays, code could use a compound literal, since C99, to create array space, on the fly. The string is valid until the end of the block.

#define UNS_HEX_STR_SIZE ((sizeof (unsigned)*CHAR_BIT + 3)/4 + 1)
//                         compound literal v--------------------------v
#define U2HS(x) unsigned_to_hex_string((x), (char[UNS_HEX_STR_SIZE]) {0}, UNS_HEX_STR_SIZE)

char *unsigned_to_hex_string(unsigned x, char *dest, size_t size) {
  snprintf(dest, size, "%X", x);
  return dest;
}

int main(void) {
  // 3 array are formed v               v        v
  printf("%s %s %s\n", U2HS(UINT_MAX), U2HS(0), U2HS(0x12345678));
  char *hs = U2HS(rand());
  puts(hs);
  // `hs` is valid until the end of the block
}

Output

FFFFFFFF 0 12345678
5851F42D
1

This answer is for those, who need to start from string in decimal representation (not from int).

  1. Convert your string representation of the number to an integer value (you can use int atoi( const char * str ); function
  2. Once you have your integer you can print it as HEX using, for example, sprintf function with %x as a format parameter and you integer as a value parameter

Here is a working example: https://ideone.com/qIoHNW

#include <stdio.h>
 
int main(void) { 
    int n;
    char hex_val[50];
 
    n = atoi("100663296");
    sprintf(hex_val, "%x", n);
 
    printf("%s", hex_val);
    return 0;
}

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