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I have this code:

char z[9];
Int_To_BCD(vInt, z);
Buflen += sprintf(BufStr + Buflen, "(%s)", z);

And:

void Int_To_BCD (int val, char *out) {

  int i = 0;
  int j = 0;
  int outIndex = 0;
  unsigned char digits[4];
  unsigned char Digit[2];

  memcpy((void*)digits, (void*)&val, 4);

  for (i = 0; i <= 3; i++) {
    Digit[0] = (digits[i] & HIGH) / 16;
    Digit[1] = digits[i] & LOW;

    for (j = 0; j < 2; j++) {
      sprintf(&(out[outIndex]), "%d", Digit[j]);
      outIndex++;
    }
  }
  if (outIndex == 0) {
    sprintf(&(out[outIndex]), "%d", 0);
    outIndex++;
  }

  out[outIndex] = '\0';

}

In debug mode: the program run until the end of the main function and show the message:

Run-Time Check Failure #2 - Stack around the variable 'z' was corrupted

the maximun of outIndex is 8 always. and z has 8 bytes of memory. hasn't it?

What is the problem?

Thanks!

  • Something else can be overwriting it. Check all of your arrays and loops thoroughly. – nonsensickle Mar 28 '14 at 11:40
2

Here you seem to take upper and lower half of the byte.

Digit[0] = (digits[i] & HIGH) / 16;
Digit[1] = digits[i] & LOW;

These are hex digits: they range from 0-15.

This means that if the last digit is greater than 9, sprintf with %d will print 3 characters (2 digits and \0) and you will have a buffer overflow.

  • Hey! it's posible. Thanks! I'll try with z[12] :P – user2459082 Mar 28 '14 at 12:01
1

Use %c instead of %d in

sprintf(&(out[outIndex]), "%d", Digit[j]);

is it working well?

  • Yes it work well, I need the number, not the character. Ex:(46120000'\0') – user2459082 Mar 28 '14 at 11:53
  • %c say that you want to write one byte into out. – Grégory NEUT Mar 28 '14 at 12:49

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