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I am trying to run this code where i use short int.

int main() {
    short int i=0;
    while(++i)
        printf("%u\n", i);
}

Ouput (using short int):

 1     
 2
 3...
 32767
 4294934528
 .
 .
 4294967295(last value)

why is there sudden jump in value after 32767 any explanations??

I am using linux(32 bit) os.

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You are causing integer overflow, so this results in undefined behvaiour. –  Oli Charlesworth Sep 23 '13 at 23:45
    
You are also specifying %u (i.e. unsigned int), but supplying a signed short. This also results in undefined behaviour. –  Oli Charlesworth Sep 23 '13 at 23:46
    
Also, watch your printf conversion specifiers. %u will print an unsigned in. %hd would be more suitable for a (signed) short int. –  DigitalTrauma Sep 23 '13 at 23:51
    
@OliCharlesworth: The short actually gets promoted to an int. I'm not sure whether the behavior in the face of the sign difference is standard-defined, implementation-defined, or undefined, though. –  user2357112 Sep 23 '13 at 23:53
    
@user2357112: That's true, it does get promoted to signed int. –  Oli Charlesworth Sep 23 '13 at 23:53
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2 Answers

up vote 2 down vote accepted

Signed integer overflow is undefined behavior. Your program pushes i beyond the bounds of what can be stored in a short, so the program is free to do absolutely anything.

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A signed short ranges from -32768 to 32767 and an unsigned short ranges from 0 to 65535. So you are exceeding data size for signed int short.

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