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Force user to input a positive integer and put user in a loop till they do.

So I want everything including characters not allowed just over > 0

I tried the following:

while (i < 0) do { 
    printf("please input a number that's positive"); 
    scanf("%d", i); 
}
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3  
What have you tried? –  Siddiqui Jul 27 '12 at 16:53
    
while (i < 0) do { printf("please input a number that's positive"); scanf("%d", i); } –  Taz B. Jul 27 '12 at 16:57
    
A while loop works for that. Place it after you accept the user input with as many conditions as you need grouped with && or ||. –  Chief Two Pencils Jul 27 '12 at 16:57
1  
You could write a program that uses the webcam to analyze the user movements, and if the user seems to intent to type a negative number, you shoot a paralyzing dart at him. You will need the paralyzing dart hardware, though. Also you must take care to no paralyze users that simply is hovering his hand over the - button, but does not intent to press it. –  lvella Jul 27 '12 at 17:21
1  
@Taz - Just FYI, there's no while (condition) do { } in C. There is do {} while(condition); and while(condition) {}, but not a while do. –  Kevin Vermeer Jul 30 '12 at 14:51

3 Answers 3

Here is another alternative of a function which takes in a char str[20] (of say, maybe 20 elements), analyses the string to check for positive integers, and returns a 0 or 1 accordingly. Lastly, convert that string to an integer using atoi().

int checkPositiveIntegers(char str[]) {
    char *ptr = str;
    if (*ptr == '-' || *ptr == '0') //checks for negative numbers or zero
        return 1;
    else {
        do {
            if (isdigit(*ptr) == 0) { //checks for non-digit at ptr location; isdigit() returns 0 if non-digit
                return 1;
                break;
            }
            ptr++;
        } while (*ptr != '\0' && *ptr != '\n');
        return 0; //returns 0 if positive integer
    }
}

So the function only accepts positive numbers from 1 to 9,999,999,999,999,999,999 (up to 19 digits if char str[] holds 20 elements).

However, if you converted the string back to int n = atoi(str);, the maximum value it could reach would be 2,147,483,647 since n is declared as a signed integer. Play around with different datatypes for exploration.

Hope this helps! :)

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There are library functions to convert strings to integers already; there's no need to reinvent the wheel here. –  Matt McNabb Mar 6 at 21:48
    
Yes I know that Matt McNabb, I was wondering if some people would like to know how the function was written. –  Roy Lin Mar 6 at 21:56

I would do this: declare char term and int wrong = 0.

do {
    printf("Enter a number: ");
    fflush(stdin);
    if (scanf("%d%c", &n, &term) != 2 || term != '\n' || n <= 0) {
        printf("Only positive numbers.\n");
        wrong = 1;
    }
    else {
        wrong = 0;
        //do something here if correct;
    }
} while (wrong);

The code above detects invalid input if the user entered a mixture of characters and numbers, or negative numbers (and zero).

However, it doesn't detect if the user entered trailing zeros in front followed by valid digits eg. 001or 00000738. If anyone else could figure this out, please share below. Thanks! :)

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fflush(stdin) causes undefined behaviour. Hopefully you meant fflush(stdout) so that the user sees the prompt. –  Matt McNabb Mar 6 at 21:47

For positive integer use the following code

int i;
do 
{ 
  printf("please input a number that's positive"); 
  scanf("%d", &i); 
}while (i < 0); 

The c language provides no error checking for user input. The user is expected to enter the correct data type. For instance, if a user entered a character when an integer value was expected, the program may enter an infinite loop or abort abnormally.

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3  
You must also check the return value of scanf(), to ensure it could actually interpret what was typed as a decimal integer. If it returns 0, then you must clear stdin from the characters that can't be read as number. –  lvella Jul 27 '12 at 17:33
    
0 would pass this while condition, and 0 is not positive. –  mvw Mar 6 at 21:52

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