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The expected output of the following C program is to print the elements in the array. But when actually run, it doesn't do so.

  #include<stdio.h>

  #define TOTAL_ELEMENTS (sizeof(array) / sizeof(array[0]))
  int array[] = {23,34,12,17,204,99,16};

  int main()
  {
      int d;

      for(d=-1;d <= (TOTAL_ELEMENTS-2);d++)
          printf("%d\n",array[d+1]);//printing the array

      return 0;
  }//looks simple but no result

What's going wrong? Why am I not getting any output?

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marked as duplicate by ChrisF Sep 2 '13 at 14:14

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1 Answer 1

up vote 10 down vote accepted

In the comparison

d <= (TOTAL_ELEMENTS-2)

TOTAL_ELEMENTS has type size_t so d is converted to unsigned. For, say, sizeof(size_t)==4, this makes the test

0xffffffff < 5

which fails, causing the loop to exit.

If you really want to start your loop counter from -1

d <= (int)(TOTAL_ELEMENTS-2)

would work

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4  
Actually TOTAL_ELEMENTS has type size_t, which is some implementation-defined unsigned type, not necessarily unsigned int. But the main issue is indeed described correctly. –  AndreyT Aug 20 '13 at 6:56
    
this works :D.. –  Abhishek Aug 20 '13 at 7:04
1  
@AndreyT Thanks, now corrected –  simonc Aug 20 '13 at 7:08
1  
@UpAndAdam: But then it wouldn't demonstrate the issue. The existence of the deliberately tortured arithmetic means this code was clearly intended as some kind of brain-teaser. –  Paul Griffiths Aug 20 '13 at 21:07
1  
@UpAndAdam: I don't dispute no effort has been demonstrated. But even if it was, there's only one comparison in the entire program, so a debugger won't help narrow that down, and even if you manage to get a debugger to show you the value of TOTAL_ELEMENTS-2, it's still going to show you that that's 5, and that d is -1. He clearly shows an understanding that -1 is less than 5, and without the knowledge of how signed vs unsigned comparisons can work, the loop really does look like it ought to work "as expected", I don't really see any laziness in this particular case. –  Paul Griffiths Aug 20 '13 at 21:56

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