3

This is my current code as folows:

#include<stdio.h>
int main() {
  /* code */
  char a[5] = {'a','b'};
  int *p =a;
  printf("%d\n", *p);
return 0;
}

When I execute my code it is showing 25185 instead of giving me an ASCII value.

Why is this happening?

Thank you

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  • 2
    int *p =a; is UB when alignment is not correct. I believe anti-aliasing also leads to undefined behaviour (UB) here. It is poor code. – chux Feb 12 at 1:12
  • I don't see why this was downvoted. OP provides code, expected outcome and actual outcome. – Andy J Feb 12 at 2:17
  • Please don't forget to mark an answer as accepted, the one wihch suits your answer the most. – Amessihel 7 mins ago
7

This is undefined behavior, so anything can happen. As for what you're observing in particular, here's the explanation:

If an array only has some of its values initialized at declaration, the remaining values are zero. So your array a is 'a', 'b', '\0', '\0', '\0'. When a pointer to the beginning of this array is interpreted as a 32-bit, little-endian int, this has the value 0x00006261, or 25185 in decimal.

  • 1
    Note that this is undefined behaviour – M.M Feb 12 at 1:13
  • @M.M It is, but I am explaining the output OP is observing – Govind Parmar Feb 12 at 1:15
  • 3
    You have nearly reached 10k rep.... +1 – thb Feb 12 at 1:24
  • 2
    And there you go, up and over the edge! Congratulations. – thb Feb 12 at 17:01
4

(Disclaimer: the other answer shows you why you get 25185, this one shows how you can achieve your goal.)

If you want to output the ASCII value a[0] (which seems to be what you're trying to do by int *p=a;), tells to printf() you want to pass a byte, and use a char* (a pointer to a character, which is a byte in C) to point to it:

int main (int arg, char **argv)
{
  char a[5] = {'a','b'};
  char *p =a; // points to a char, ie a byte
  printf("%hhx\n", *p); // tells to printf it's a byte type
  return 0;
}
  • 1
    char *p =a; has no alignment problem and no anti-aliasing - Good, unlike OP's code. – chux Feb 12 at 1:14

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