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I am printing four variables at the end of my program.

    int n = 0;
    for (n = 0; n < count; n++)
        printf("sorted array:%d\n ", array[n]);

        int last = array[0];
        int unique = 1;
        int i;
        for (i = 1; i < n; i++) {
            if (array[i] != last) {
                last = array[i];
                unique++;
            }
        }

        char *start;
        int c;
        int value;
        int step;

        c = 0;
        start = line;
        while (sscanf(start, "%d%n", array + c, &step) == 1) {
            start += step;
            c += 1;
        }

        value = 1;
        int j;
        for (j = 1; j < c; ++j) {
            value += (array[j] - array[j - 1]) ? 1 : 0;
        }

        printf("integers: %d ", count);

    }

    /* Close the file */
    fclose(fp);
    return 0;
}

The only way that I can print the correct value of the variable unique is if I keep the printf("sorted array:%d\n", array[n]);. However, I used that printf statement for testing purposes only and do not want that to print when my program executes.

If I remove for(n = 0; n < count; n++) and printf("sorted array:%d\n", array[n]);, the value for unique is always one which is incorrect.

I have never seen anything like this before. Any suggestions as to why the printf of one variable seems to be bound to another?

5

If you keep your for loop, then at the end of it, we have n = count. If you remove it, you have n = 0. This then changes your second for loop, as i doesn't take the same values.

  • Wow..thank you. I appreciate it. I feel a bit dumb. (: Thank you again. I will accept your answer when the time is up. – sam_smith Jan 25 '16 at 1:05
  • 1
    Dumb errors are often very hard to spot by yourself, but easy for others. Get a rubber duck, he may save you some precious time :-) – Magix Jan 25 '16 at 1:06
  • 1
    Haha! I have one actually...I will have to use it. Thank you again and for the laugh! (: – sam_smith Jan 25 '16 at 1:08

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