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As a programmer of long standing, it's sobering to realise that even the humble for loop is not fully comprehended. Why does the following program print a single 1 to the console? I fully expect the first loop to also produce a 1! Compiled with -ansi switch.

/* gcc installed version: 4:4.4.4-1ubuntu2 */

#include <stdio.h>

#define SIZE 2

int main()
{
  int i;  
  int a[SIZE];

  a[0]=0; 
  a[1]=1;

  for(i=0; (i<SIZE) && (a[i]!=0); i++)        
    printf("%i\n",a[i]); 

  for(i=0; i<SIZE; i++)   
    if (a[i]!=0)  
      printf("%i\n",a[i]);      

  return 0;      
}
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5  
The first loop terminates "early". – ta.speot.is Sep 21 '12 at 23:28
    
<bangs head on wall> Thank you! – user1148739 Sep 21 '12 at 23:31
up vote 0 down vote accepted

It's the difference between this:

for(i=0; i<SIZE; i++)   
  if (a[i]!=0)  
    printf("%i\n",a[i]);
  else
    continue; // implicit in your version with the if statement

and this:

for(i=0; i<SIZE; i++)   
  if (a[i]!=0)  
    printf("%i\n",a[i]);
  else
    break; // equivalent of what the non if statement version does.

(Credit goes to @ta.speot.is for actually spotting the problem, this is merely an explanation)

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the first loop is equivalent to:

for(i=0; ; i++) {
    if( !((i<SIZE) && (a[i]!=0)))
        break;      
    printf("%i\n",a[i]); 
}
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