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I'm very new to dealing with bits and have got stuck on the following warning when compiling:

7: warning: left shift count >= width of type

My line 7 looks like this

unsigned long int x = 1 << 32;

This would make sense if the size of long on my system was 32 bits. However, sizeof(long) returns 8 and CHAR_BIT is defined as 8 suggesting that long should be 8x8 = 64 bits long.

What am I missing here? Are sizeof and CHAR_BIT inaccurate or have I misunderstood something fundamental?

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5 Answers 5

up vote 36 down vote accepted

long may be a 64-bit type, but 1 is still an int. You need to make 1 a long int using the L suffix:

unsigned long x = 1UL << 32;

(You should also make it unsigned using the U suffix as I've shown, to avoid the issues of left shifting a signed integer. There's no problem when a long is 64 bits wide and you shift by 32 bits, but it would be a problem if you shifted 63 bits)

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Would unsigned long x = 1; x <<= 32; work, out of interest? –  Niet the Dark Absol Nov 17 '10 at 3:53
    
@Kolink: Yes, that would have the same effect, as would (unsigned long)1 << 32 The left operand just has to be an unsigned long. The UL suffix is just the most straightforward way to accomplish that. –  James McNellis Nov 17 '10 at 4:03
    
@James McNellis: What's the issues of left shifting a signed integer? I only know that right shifting a signed integer may leads to different result with different compilers. –  whjm Mar 18 '13 at 5:34
    
@whjm: It may overflow. Signed integer overflow is undefined behavior. –  Siyuan Ren Mar 10 '14 at 9:46
1  
@whjm: I just referred to the C99 standard and found following: The result of E1 << E2 is E1 left-shifted E2 bit positions; vacated bits are filled with zeros. If E1 has an unsigned type, the value of the result is E1 × 2 ** E2, reduced modulo one more than the maximum value representable in the result type. If E1 has a signed type and nonnegative value, and E1 × 2 ** E2 is representable in the result type, then that is the resulting value; otherwise, the behavior is undefined. –  whjm Mar 17 '14 at 5:33

unsigned long is 32 bit or 64 bit which depends on your system. unsigned long long is always 64 bit. You should do it as follows

unsigned long long x = 1ULL <<32

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IOW, it's the size of the constant 1 that's giving you problems, not x. –  deStrangis Oct 2 '12 at 15:49

unsigned long x = 1UL << 31;

Not show the error message. Because before you specify the 32, is not true because only limited to 0-31.

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You can't shift a value to its max bit

int x;         // let int be 4 bytes so max bits : 32 
x <<= 32; 

So, this generates the warning

left shift count >= width of type (i.e type = int = 32 )

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Please refrain from adding telephone numbers, your name etc in your answers. –  xeek Mar 29 '12 at 13:12

use can use like that: unsigned long x = 1; x = x << 32;

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