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So when I run this my program skips the everything and prints out a 63 number array, If I take out the while statements it will run and print out an array with the number I enter for input. I was just trying to figure out why it is not doing the error check, I had a similar program where I typed it the exact same way and It worked.

  1 #include<stdio.h>
  2 #include<stdlib.h>
  3 #include<time.h>
  4
  5 int check_input(int);
  6 void initialize_array(int array[],int);
  7 void print_array(int array[],int);
  8 void display_menu();
  9 int check_option(int);
 10 int common_numbers(int array[],int array2[],int);
 11 int count_numbers(int array[],int,int);  
 12 int mode(int array[],int);
 13 void print_histogram(int array[],int array2[],int);
 14
 15 #define MAX 100
 16
 17 int main()
 18 {
 19     int a[MAX];
 20     int b[MAX];
 21     int i;
 22
 23     while (check_input(i) == 0)
 24     {
 25         printf("\n Enter the size of the input:");
 26         scanf("%d", &i);
 27
 28         while (check_input(i) == 0)
 29
 30         {
 31             printf("\n Invalid input, enter the input again:");
 32             scanf("%d", &i);
 33         }
 34
 35         check_input(i);
 36     }
 37
 38
 39
 40
 41     initialize_array(a, i);
 42
 43     printf("\n Input array\n");
 44     print_array(a, i);
 45
 46 }
 47
 48 void initialize_array(int array[], int size)
 49 {
 50     srand(time(NULL));
 51     int x;
 52
 53     for (x = 0; x < size; x++)
 54     {
 55         array[x] = rand()%10;
 56     }
 57 }
 58
 59 int check_input(int a)
 60 {
 61     if(a > 0 || a <= 100)
 62     {
 63     a = 1;
 64     
 65     return a;
 66     }
 67 
 68     else 
 69     {
 70     a = 0;
 71     
 72     return a;
 73     }
 74 }
 75
 76 void print_array(int array[], int size)
 77 {
 78     int x;
 79
 80     for(x = 0; x < size; x++)
 81     {
 82         printf("%d ", array[x]);
 83     }
 84
 85     printf("\n");
 86 }
share|improve this question
    
Please don't post code with line numbers if you don't use them in your question. –  Michael Walz Mar 20 at 21:32

2 Answers 2

up vote 2 down vote accepted

Your program provokes undefined behavior, i should be initialized. -1 will be good init value for i. So for begining

 int i =-1;

And then change the condition in check_input to

if(a > 0 && a <= 100)

as you want i to be between 0 and 100. Asking

if(a > 0 || a <= 100)

will always give true .

share|improve this answer
    
That worked, thank you! –  user3427697 Mar 20 at 21:38
1  
I fail to understand how @Dabo answer helped you and mine didn't, since they are virtually the same. But life goes on :-D you should accepted his answer if it helped you –  Streppel Mar 20 at 21:43
    
@Streppel i started with explanation regarding init value, and you edit your answer with explanation of init value later. Maybe he read my post first :)))) –  Dabo Mar 20 at 21:45
    
I doubt that's it, because I edited my init value a few seconds after I posted the answer. But, whatever. Upvoted your answer anyway, since it is also correct. –  Streppel Mar 20 at 21:47

You will need to change your condition

if(a > 0 || a <= 100)

to

if(a > 0 && a <= 100)

so that you can garantee that a will always be between 0 and 100. Otherwise, your if statement will always be true.

Also, you should initialize your variable i, like this

int i = 0;

or it will be an variable with undefined value.

There are a couple more improvements that you can make on your code:

  1. there is no need for your check_input(i); call, at line 35.
  2. You don't need to set a value to your a variable within your check_input() function. Just return 1; or return 0; instead of return a;
share|improve this answer
    
I changed that and It's still doing the same thing. –  user3427697 Mar 20 at 21:35
    
@user3427697 Is it still skipping your first while check? because it works here –  Streppel Mar 20 at 21:39

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