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Every line of the output of this program is equal to 2 ^ i - 2, except for the last line, which is equal to 2 ^ 64 - 1. Why is that?

#include <stdio.h>
#include <stdlib.h>
#include <inttypes.h>

int main(void) {
    unsigned long long ONE = 1;
    unsigned long long i;
    for (i = 1; i <= 64; i++) {
        printf("%"PRIu64"\n", (ONE << i) - 2);
    }

    return EXIT_SUCCESS;
}

Output:

0
2
6
14
30
62
126
254
510
1022
2046
...
4611686018427387902
9223372036854775806
18446744073709551615
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2  
I'm pretty sure shifting by 64 bits results in undefined behavior. Have you tried shifting 64 bits total, but in multiple steps? –  Dennis Meng Aug 30 '13 at 1:14
    
unsigned long long i <<= 63; i <<= 1; works where unsigned long long i <<= 64; doesn't - you're right, thanks. Do you know where I can read more about this? –  Kiwi Aug 30 '13 at 1:20
    
The answers already link to helpful resources, so I won't bother to clutter this question up with more. –  Dennis Meng Aug 30 '13 at 1:22

4 Answers 4

up vote 4 down vote accepted

Assuming yout ULL type is 64 bits wide, you're into undefined behaviour territory. As per C11 6.5.7 Bitwise shift operators:

If the value of the right operand is negative or is greater than or equal to the width of the promoted left operand, the behavior is undefined.

What's possibly happening is that the shift value is being reduced modulo 64, and 64 % 64 is zero. Hence, it's just evaluating ONE - 2 which is wrapping to 264-1. But, in all honesty, it could just be plucking that result out of the air since UB imposes no real restrictions :-)

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You are left shifting 64 to a 64-bit type(unsigned long long on your machine), it's undefined behavior.

BTW, unsigned long long ONE = 1; is bad coding style, you can simply use 1ULL.

C11 §6.5.7 Bitwise shift operators

The integer promotions are performed on each of the operands. The type of the result is that of the promoted left operand. If the value of the right operand is negative or is greater than or equal to the width of the promoted left operand, the behavior is undefined.

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1  
Bad coding style? It may be the single worst line of code I've ever read! In terms of characters to meaningful-content ratio, its about 26:1 –  abelenky Aug 30 '13 at 1:21
2  
@abelenky Hey don't blame the guy who didn't design the language keywords. –  Neil Kirk Aug 30 '13 at 1:24
    
It may be bad style but it works fine, the integer promotion rules make it very well defined, and ULL could be considered unnecessary code clog. I'd be more worried about a variable called ONE especially when you have to change its value to 2 :-) –  paxdiablo Aug 30 '13 at 1:27
1  
@paxdiablo That is exactly what I mean, using ONE as variable name: in this case a constant may be what is needed. In other cases, a meaningful variable name is needed. Good point on ULL is unnecessary. –  Yu Hao Aug 30 '13 at 1:30

1ULL<<64 is undefined while shifting by less is defined.

See Is Shifting more than 32 bits of a uint64_t integer on an x86 machine Undefined Behavior? for more detail on the language standard.

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You reached the bit limit of 64bit (long long). Apparently 2^63 shift left causes a rollover, resulting in 2^0 = 1.

1 - 2 = -1 which, when treated as unsigned (assuming long long) is 2^64-1.

This result is interesting, since a non rollover implementation of shift left would result in 0, instead of 1, which after the substraction would result on 2^64-2.

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