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I was writting a program that can read a set of numbers file called dog.txt; and also writes to two file separating odd and even. i was able to compile my program however, the output expected is not the same which was supposed to be even numbers in one file called EVEN, odd numbers in file odd.

#include <stdio.h>
#include <stdlib.h>
int main(int argc, char *argv[])
{
  int i;
  int even,odd;
  int num;

  if (argc != 4) {
    printf("Usage: executable in_file  output_file\n");
    exit(0);
  }

  FILE *dog = fopen(argv[1], "r");
  FILE *feven= fopen(argv[2], "w");
  FILE *fodd= fopen (argv[3], "w");
  while (fscanf(dog, "%d", &num) != EOF)
    {
      if (0==i%2){
        i++;
         printf("even= %d\n", num);
         }
      else if(i!=0){
       i++;
       printf("odd= %d\n", num);
      }
    }
  fclose(feven);
  fclose(fodd);
  fclose(dog);

  return 0;
}

output:

even= 1
odd= 2
even= 34
odd= 44
even= 66
odd= 78
even= 94
odd= 21
even= 23
odd= 54
even= 44
odd= 65
even= 78
odd= 68
even= 92
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3  
Is this a homework assignment? :) –  Jason Slocomb Mar 29 '10 at 21:53
    
Homework by any chance? In this case you should learn how the loops and the file I/O works first; This example just demonstrates you get it very wrong. –  EFraim Mar 29 '10 at 21:53
6  
No way, this is clearly an enterprise application. –  Tyler McHenry Mar 29 '10 at 21:54
3  
If you don't start accepting blatantly correct and helpful answers (stackoverflow.com/questions/2447580/…, at the very least, and I think at least half of your other questions), eventually, people will just stop answering you at all. And none of us wants that, SO is a place for people to get help with programming stuff. (An earlier version of this comment said "Start putting some effort into your questions and start accepting answers..." but actually, this question shows definite signs of effort.) –  T.J. Crowder Mar 29 '10 at 21:56
1  
BTW, you don't open a file called dog.txt, EVEN and ODD. Your files are named according to the command line parameters. The name of the variable holding a file pointer (FILE*) has nothing to do with file name. –  EFraim Mar 29 '10 at 22:01

4 Answers 4

You're checking i % 2, not num % 2. I'm not even sure what i does in this example—perhaps you're planning on using it later.

while (fscanf(dog, "%d", &num) != EOF) {
    if (num % 2 == 0) {
        printf("even = %d\n", num);
    }
    else if(num != 0) {
        printf("odd = %d\n", num);
    }
}

I imagine the code to write these numbers to the files will come later, once you've fixed this bug.

share|improve this answer
    
i isn't even initialized properly. –  Felix Kling Mar 29 '10 at 23:04

The code contains no instructions to write into the output files. It only writes to stdout.

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In addition to the printf/fprintf problem, in any decent modern compiler, that code should be generating a warning that you're not assigning any initial value to i.

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2  
Uninitialized variables are not a compile-time error in C or C++, they just have an arbitrary value (whatever used to be in the memory that they're using) until you do initialize them. A good compiler should warn, though. –  Tyler McHenry Mar 29 '10 at 21:59
    
@Tyler: Quite true, good point. Heck, the compilers I was using twenty years ago included those sorts of lint features. I suppose it should compile, just with warnings. But still, ignore warnings at your peril. :-) –  T.J. Crowder Mar 29 '10 at 22:11

The printf function writes to the screen (more correctly, it writes to "standard output", but that is usually the screen). You want to write to a file. You have opened files called feven and fodd. To write to them, you would use the fprintf call, which works like printf except it takes an extra (left-most) argument, which is the FILE* that you want to write to, e.g.

FILE *fmyfile = fopen("myfile.txt", "w");
fprintf(fmyfile, "The magic number is %d!", 3);

Also, your results are incorrect, but that's an unrelated problem.

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