3

I need to fill manually an array of chars. I declared it like this:

char* coor = malloc(sizeof(char) * 5);

Then I manually assigned every variable to its position:

coor[0] = O_colum;
coor[2] = ((char)(O_row+48));

coor[3] = '-';
coor[4] = D_colum;

coor[5] = ((char)(D_row+48));

(D_Row and O_row are integers, I need that number in character form, not the equivalent value in ASCII; that’s why I do +48)

The problem comes when I try to print it. If I use printf(" %s", coor) it only prints the first characters and I don’t know why. I’m using %s, so it should print all the characters in the string. When I do this:

char *p = "hello";
printf("%s",p);

It does print hello.

  • 9
    Last index of a 5-element array is 4, not 5... and you're skipping element 1. Also, you need a null byte at the end... so you should allocate 6 bytes and set the last to 0. – Dmitri Jul 5 '15 at 22:14
  • OMG thanks, fixed it, skipping element 1 was a problem when writting it here, but it was really the null byte that causes the problem! THANKS! – LittnerDiAzure Jul 5 '15 at 22:21
  • 1
    Note: sizeof(char) will never differ from 1 as that is defined by the standard. So nothing gained using it. If you want to always use the correct type, use sizeof(*coor). – too honest for this site Jul 5 '15 at 22:32
2

There are two mistakes in your code:

  • you are skipping the position 1 of the array. This is probably the reason why it prints only the first element.
  • you need to add the end string character \0 in the end of the string.

This should fix it :

char* coor = malloc(sizeof(char) * 6);

coor[0] = O_colum;
coor[1] = ((char)(O_row+48));

coor[2] = '-';
coor[3] = D_colum;

coor[4] = ((char)(D_row+48));
copr[5] = '\0';

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