Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

My program compiles correctly but i am having problem when i run it. The first scanf (width) works correctly but when i try with another scanf(height) i get segmentation fault 11. And can i do this program to work without using pointers. (Also i need limit checker function because i have to use it again and again in my program).

#include <stdio.h>
void limitChecker(int x, int y, int* input);
int main(void)
{
    int* x;
    int* y;
    printf("Enter the width of the windows. (3 - 5) : ");
    scanf("%d", x);
    limitChecker(3, 5, x);
    printf("width: %d \n", *x);
    printf("Enter the height of the windows. (2 - 4) : ");
    scanf("%d", y);
    limitChecker(2, 4, y);
    printf("Height: %d \n", *y);

}

void limitChecker(int x, int y, int* input)
{
    while(!(*input>=x && *input<=y))
    {
    printf("Please enter a value between (%d - %d): ",x,y);
    scanf("%d", input);
    }
}
share|improve this question

3 Answers 3

up vote 0 down vote accepted

You need to use a reference to the variables used in the scanf().

For example, scanf("%d", &x);

The first parameter of scanf() is for the type of data, and the following parameter(s) are a list of pointers to where you would like the user input to be stored.

CORRECTED CODE:

#include <stdio.h>
void limitChecker(int x, int y, int* input);
int main(void)
{
    int x;
    int y;
    printf("Enter the width of the windows. (3 - 5) : ");
    scanf("%d", &x);
    limitChecker(3, 5, &x);
    printf("width: %d \n", x);
    printf("Enter the height of the windows. (2 - 4) : ");
    scanf("%d", &y);
    limitChecker(2, 4, &y);
    printf("Height: %d \n", y);

}

void limitChecker(int x, int y, int* input)
{
    while(!(*input>=x && *input<=y))
    {
    printf("Please enter a value between (%d - %d): ",x,y);
    scanf("%d", input);
    }
}
share|improve this answer
    
i cant because its an pointer (if i add & i get error during compilation) This is my error "format ‘%d’ expects type ‘int *’, but argument 2 has type ‘int **’" –  Nakib Jun 23 '13 at 22:33
    
Okay, I see. You simply made x and y pointers, when you should actually declare them int x, y;. –  Zak Jun 23 '13 at 22:36
    
ya i know they are variables. I am having problem with the input which is pointer (You are getting confused because i use same name x and x in my function as well as main) –  Nakib Jun 23 '13 at 22:36
    
Your variables are only for pointers, not for actual integers, therefore you would need to manually allocate space using malloc(), or you can simply just declare them as the actual int variables and get their pointers on the fly using &x and &y. –  Zak Jun 23 '13 at 22:38
    
i tried using variable but the real value does not change due to scope . –  Nakib Jun 23 '13 at 22:40

You did not allocate memory to hold x and y.

Allocate them on the stack and then use the & address of operator to obtain a pointer to that memory.

#include <stdio.h>
int limitChecker(int x, int y, int input);
int main(void)
{
    int x;
    int y;
    printf("Enter the width of the windows. (3 - 5) : ");
    scanf("%d", &x);
    x = limitChecker(3, 5, x);
    printf("width: %d \n", x);
    printf("Enter the height of the windows. (2 - 4) : ");
    scanf("%d", &y);
    y = limitChecker(2, 4, y);
    printf("Height: %d \n", y);

}

int limitChecker(int x, int y, int input)
{
    while(!(input>=x && input<=y))
    {
    printf("Please enter a value between (%d - %d): ",x,y);
    scanf("%d", &input);
    }

    return input;
}

If you want x and y to be pointers then you have to assign them valid memory before you use them.

int * x = malloc(sizeof(int));
int * y = malloc(sizeof(int));
share|improve this answer
    
can i achieve same thing without using pointers –  Nakib Jun 23 '13 at 22:31
    
@Nakib Then you need to allocate memory to hold your actual int. An int * does not come with valid memory to hold the contents by default. Edited. –  Sergey L. Jun 23 '13 at 22:33
    
I dont get u. I am saying without pointer not with pointers –  Nakib Jun 23 '13 at 22:35
    
@Nakib my bad. Edited the limit function too now. You need to have it return the new value then if no pointer is to be used. –  Sergey L. Jun 23 '13 at 22:37
#include <stdio.h>

int limitChecker(int x, int y, int value){
    return x <= value && value <= y;
}

int inputInt(void){
    //x >= 0
    int x = 0;
    int ch;
    while('\n'!=(ch=getchar())){
        if('0'<=ch && ch <= '9')
            x = x * 10 + (ch - '0');
        else 
            break;
    }
    return x;
}

int main(void){
    int x, y;
    do{
        printf("Enter the width of the windows. (3 - 5) : ");
        x = inputInt();
    }while(!limitChecker(3, 5, x));
    printf("width: %d \n", x);
    do{
        printf("Enter the height of the windows. (2 - 4) : ");
        y = inputInt();
    }while(!limitChecker(2, 4, y));
    printf("Height: %d \n", y);
    return 0;
}
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.