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I was teaching the C programming language to a friend and we came up with something I could not explain. This is the code we wrote:

#include <stdio.h>

int main(void)
{
    char num1;
    char num2;

    printf("%s", "Enter the first number: ");   
    scanf("%d", &num1);
    printf("%s%d\n", "The number entered is:", num1);

    printf("%s", "Enter the second number: ");
    scanf("%d", &num2);
    printf("%s%d\n", "The number entered is:", num2);

    printf("%s%d\n", "The first number entered was:", num1); /* This was done for testing */
    printf("%s%d\n", "The sum is:", num1+num2);

    return 0;
}

The weird thing is that we tried to do 5 + 6 and we expected to get 11 but instead got 6, I added a line to see what's going on with the first number and it becomes 0 after the second number is read.

I am aware that the variables should be an int (in fact the original code was like that and worked) but my understanding is that a char is a small integer so I thought it would be 'safe' to use if we were adding small numbers.

The code was tested and compiled on a Linux machine with cc and on a Windows machine with cl. The output was the same. On the Windows machine the program throw an error after the addition.

I would like an explanation on why this code is not working as I expected. Thanks beforehand.

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  • Use scanf("%hhd", &num1); – chux - Reinstate Monica Sep 15 '14 at 2:49
  • You can also included text in the format of printf. E.g. printf ("The number entered is: %d\n", num2); That prevents having to specify %s for the static text itself. (assuming you corrected the input issues per-below) – David C. Rankin Sep 15 '14 at 5:25
  • @DavidC.Rankin: I was skimming the pages on some Tannenbaum book and I remember reading that doing it could lead to a security issue. – Gerardo Cauich Sep 15 '14 at 6:12
  • Hmm, I think you have it backwards. There is no possibility of injecting anything into the literal part of the format string (i.e. printf ("whatever you want = %d\n", yourint). There is no way anybody can change whatever you want. I think you are referring to examples given related to Uncontrolled format string. Where the example bad: printf(buffer); is compared to good: printf("%s", buffer); If this is what you are thinking, it is a misinterpretation of the example. (notice no quotes in bad) – David C. Rankin Sep 15 '14 at 7:03
  • @DavidC.Rankin: You are right, I haven't read that far into the book yet. As an experiment, I replaced a literal inside an .exe file with a text editor like this wh%sev%s y%s want and it just replaced the characters at the output. – Gerardo Cauich Sep 15 '14 at 18:08
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You cannot pass a pointer to a different datatype to scanf. scanf will write to memory assuming you gave it a pointer to what it expected (e.g. int for %d), and will exhibit wonderful undefined behaviour if you give it a pointer to a different datatype.

Here, what is most likely happening is that scanf is overwriting e.g. 4 bytes on your stack when your chars only take up 1 byte, so scanf will just be happily writing right over some other variable on your stack.

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  • So that explains why the value is changed to 0 when the second number is read. Thanks for the enlightenment! – Gerardo Cauich Sep 15 '14 at 2:45
  • 2
    @Gerardo: Note that the explanation is basically a guess. The behaviour is fundamentally undefined; I'm guessing based on what I'd expect a compiler might do. (Don't rely on this kind of behaviour, of course!) – nneonneo Sep 15 '14 at 2:46
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a char is a small integer so I thought it would be 'safe' to use it if we were adding small numbers.

That is correct, char is a small integral type , and it's OK to use it in integer arithmetic(although char may be signed or unsigned which may causes the result unexpected).

But the problem is, a pointer to char can NOT be used in a place where a pointer to int is expected. And this is the case for scanf("%d", &num1);, the second parameter is expected to a of type int *.

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