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The type int is 4-byte long and I wrote a little procedure in C under Ubuntu to print the number I've just input. When I input 2147483648, i.e. 2^31, it prints 2147483647 rather than -1. The same thing happens when I input any number larger than 2147483647. Why doesn't it overflow to -1 as I learnt form book but seems like truncated to INT_Max and what happened in the bits level?

#include <stdio.h>
int main(){
  int x;

I made a mistake. INT_Max+1 should equal to INT_Min. I modified the code:

#include <stdio.h>
int main(){
  int x=2147483647;
  int y=x+1;

and the output is -2147483648 Now I'm just wondering what happened when I call the function scanf? I think it truncated all the input number larger than 2147483647 to 2147483647.

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How do you expect anyone to be able to help, when you're not showing us your code?! – unwind Oct 21 '13 at 10:27
You might want to add the proper code you used. It's probably related to the input function that truncate your input. – Lohrun Oct 21 '13 at 10:28
Sorry for that~ I thought it was too simple to put it on~:P @unwind – twoyoung Oct 21 '13 at 10:41

3 Answers 3

up vote 1 down vote accepted

The representation of 2147483647 ie INT_MAX is 0x7FFFFFFF.
If you add 1, you'll get an undefined behaviour.
This said, in practice, if you add 1, you'll get 0x80000000 ie -2147483648.
I don't know why you expect -1 as its binary encoding is 0xFFFFFFFF.

#include <stdio.h>
#include <errno.h>

int main(){
  int val1 = 2147483647;
  int val2 = val1+1;
  int x;

  printf("errno before : %d\n",errno);
  scanf("%d",&x);                        //enter 2147483648 or a larger value
  printf("errno after : %d\n\n",errno);

  printf("val1 = %d (0x%X)\n", val1, val1);
  printf("val2 = %d (0x%X)\n", val2, val2);
  printf("x    = %d (0x%X)\n", x, x);

  return 0;

Output :

errno before : 0
errno after : 34 //0 if the entered value is in the range of 4-bytes integer

val1 = 2147483647 (0x7FFFFFFF)
val2 = -2147483648 (0x80000000)
x    = 2147483647 (0x7FFFFFFF)

The reason why you get x=2147483647 is that scanf clamps the value to the possible range.
If you check errno after scanf call, you will see that it is equal to ERANGE (code 34)

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Yes yes ~!! I made a mistake. It's -2147483648, the INT_Min. But why couldn't I get the negative answer using my code? – twoyoung Oct 21 '13 at 10:46
I modified my code like yours, it does get -2147483648. What's the difference between using a scanf function to store the number and immediately assigning the number to a variable? – twoyoung Oct 21 '13 at 10:54
@twoyoung, scanf clamps the value to 2147483647 and sets errno to ERANGE. – Michael Oct 21 '13 at 11:55

By the C99 standard 6.5 Expressions:

If an exceptional condition occurs during the evaluation of an expression (that is, if the result is not mathematically defined or not in the range of representable values for its type), the behavior is undefined.

See here:

int i = 2147483648;

void main()

By the way main returns int.

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You can read input in hexadecimal and will get proper output

int main(void) {
int a;

printf("\nEnter number :"); scanf("%X",&a);

    return 0;

input value : 80000000
Output will be :-2147483648
OR you can use like this

printf("\nEnter number :"); scanf("%u",&a);

input value : 2147483648
Output will be :-2147483648

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And what if the format specification in scanf is signed like %d? – twoyoung Oct 21 '13 at 11:20
And When you input value [with scanf("%d",&a)] greater than INT_MAX, scanf takes INT_MAX due to %d (integer format specifier). But in case of %u the input range will be INT_MAX*2+1 hence you can input value more than INT_MAX . – pramod kumar Oct 21 '13 at 11:22
Can you explain to me why "scanf takes INT_MAX due to %d when I input value [with scanf("%d",&a)] greater than INT_MAX"? This is the place where I really can't understand. – twoyoung Oct 21 '13 at 11:31

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