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How can I obtain the value of INT_MAX using only the bitwise operators, in C? I expected ~0 to be 1111111111 (complement of 1, so decimal -1) and ~0 >> 1 to be 0111111111, which would be max, but it's still -1.

Why is that and how can I obtain the value of INT_MAX by using bit operations?

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5 Answers 5

up vote 4 down vote accepted

Try ~0UL >> 1. The issue is that C will do a sign-extended right shift if it's dealing with a signed type. This is why you're still getting negative one -- because it's shifting in another 1 bit to match the 1 bit that was there. (That way -8 >> 1 gives -4 as you'd like for fast divisions by two.)

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4  
~0UL >> 1 is LONG_MAX. You need ~0U >> 1. Maybe also cast it to int, so it would have the right type. –  ugoren Feb 22 '12 at 20:51
    
Subtle but good point -- uhg, compiler differences always get the best of me. Question is, is any of this ANSI or is there no real standard? –  Kaganar Feb 22 '12 at 20:53
    
I think the standard says to use INT_MAX. Your solution works for 2's complement, i.e. any real cpu. As an alternative, I think for(x=0;x+1>x;x++); is quite robust, though slow. –  ugoren Feb 22 '12 at 21:01
    
Thinking again, I think it is guaranteed to work. Unsigned numbers are well defined. Signed positive numbers must have the same encoding. The high bit must be the sign (1=negative). So this pattern necessarily gives the largest positive number. –  ugoren Feb 22 '12 at 21:08
    
@ugoren That loop would work for unsigned numbers, but signed overflow is undefined behaviour. –  Daniel Fischer Feb 22 '12 at 21:17

If you shift a negative number to the right, the new bits of the number may be 1 (to keep it negative). That why you get -1.

Edit: You can do something like:

int i=1;
while (i<<1) i<<=1;
i=~i;
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"May be"? As in, not in all implementations? –  Paul Manta Feb 22 '12 at 20:30
1  
I think that the standard says that it depends on the implementation. –  asaelr Feb 22 '12 at 20:32
    
@PaulManta Right-shifting negative numbers is implementation-defined indeed (6.5.7(5)). asaelr, but for E1 > 0 a value of a signed type, E1 << E2 is undefined behaviour if E1 * 2^E2 is not representable in that type, so your alternative relies on a specific interpretation of this undefined behaviour. –  Daniel Fischer Feb 22 '12 at 21:23

If you treat 0 as an unsigned integer, the compiler will not perform a signed shift:

int i = ~0U >> 1;

This will give you INT_MAX

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As far as I know, there is no portable solution except to use the INT_MAX macro. See my longstanding question:

Programmatically determining max value of a signed integer type

and the question it's based on:

C question: off_t (and other signed integer types) minimum and maximum values

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(1<<31)-1)

as well. This is an old thread but i'll post it anyway for anyone googling it. But it's not entirely bitwise, and it's assuming an "int" on your machine is 32bit.

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