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What i want to do is make a String of 4 integers with whitespaces in between. Like in Java:

String res = num1 + " " + num2 + " " + num3 + " " + num4;

But I can't figure out how to do it in C.

int numWords = 0;
int numLines = 0;
int numChars = 0;
int numBytes = strlen(string);
char *result = malloc(sizeof(char) * 10);
result += numWords; //doesnt work is there somekind of function in c to do this?
share|improve this question
up vote 4 down vote accepted

You can use sprintf to convert each number to a string (and strcat to place them one after the other if necessary). You should keep track of the length of the string to ensure you don't overflow it.

For example:

int var = 10;
char buf[20];
sprintf(buf, "%d", var);  // buf string now holds the text 10

You don't need to make it much more complicated than this if you have a set format and amount of numbers. So if you always need one space between four numbers, you could do it all with one sprintf and a format string like "%d %d %d %d" (though this would require a much larger character array).


It'd be easy to write a small utility function that adds to an existing string, something like:

int add_to_string(char *buf, size_t sz, int num)
{
   char tmp[20];
   sprintf(tmp, " %d", num);

   size_t len = strlen(tmp) + strlen(buf) + 1; 
   if (len > sz)
      return -1;

   strcat(buf, tmp);
   return 0;
}

which you'd call with something like:

char buf[100];
sprintf(buf, "%d", 42);
add_to_string(buf, sizeof(buf), 9);
add_to_string(buf, sizeof(buf), 15);
add_to_string(buf, sizeof(buf), 8492);
add_to_string(buf, sizeof(buf), 35);
printf("String is '%s'\n", buf);

Output:
String is '42 9 15 8492 35'
share|improve this answer

Use sprintf:

char target[SOME_SIZE];
...
sprintf(target, "%d %d %d %d", num1, num2, num3, num4);

You'll have to make sure your target is large enough to accommodate the string representations of all four numbers, plus three spaces, plus any signs, plus the 0 terminator. It takes 3.3 bits to represent a decimal digit, so a 32-bit int can have up to 10 decimal digits.

If you want to allocate the target buffer dynamically, you'd do something like

size_t maxdigits = (size_t) ceil((sizeof num1 * CHAR_BIT) / 3.3);
char *target = malloc( sizeof *target * ((4 * maxdigits) + 3 + 4 + 1)); 

+3 for the spaces, +4 for any sign characters (+/-), +1 for the 0 terminator.

share|improve this answer
#define FMT_STR "%d %d %d %d"

char *make_string(int num1, int num2, int num3, int num4)
{
    char *res;
    int len;

    // compute the length
    len = snprintf(NULL, 0, FMT_STR, num1, num2, num3, num4) + 1;
    // allocate and use the buffer
    res = malloc(len);
    snprintf(res, len, FMT_STR, num1, num2, num3, num4);

    return res;
}
share|improve this answer
1  
You have a horrible bug. The length that snprintf returns does not include the required NULL terminator. In other words, you need to malloc(len+1) bytes. Please correct your code. And please don't cast the return from malloc in C, it's unnecessary and considered poor form. – Nik Bougalis Mar 13 '13 at 17:48
    
@NikBougalis Right, bug is fixed. What about "poor form"? I have not heard of it? Any link? – Valeri Atamaniouk Mar 13 '13 at 17:54
    
Check out: stackoverflow.com/questions/1565496/… – Nik Bougalis Mar 13 '13 at 17:56
1  
@ValeriAtamaniouk: As of C89, the cast is no longer necessary, and under that version it can mask a bug if you forget to #include stdlib.h or otherwise don't have a declaration for malloc in scope. Since C99 got rid of implicit int, the bug isn't so much of an issue anymore, but it is unnecessary and just adds visual clutter. Note that C++ is different in this regard; C++ doesn't allow you to assign void * values to other pointer types without a cast. – John Bode Mar 13 '13 at 17:58

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