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Compiling this with gcc (4.6.3) yields no warnings and produces -2147483648 as the result.

printf ("%d", (1<<31));

Compiling this yields "warning: integer overflow in expression [-Woverflow]" and produces 2147483647 as the result.

printf ("%d". (1<<31)-1);

I am confused why the second expression gives the integer overflow warning.

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(1<<31)-1 needs 32 bits to represent so its a overflow. –  Charan Pai Jun 10 '13 at 7:57

2 Answers 2

up vote 10 down vote accepted

Although 1<<31 is arguably undefined behaviour for a signed 32 bit integer, it typically results in the maximum negative 32 bit 2's complement integer value (0x80000000 = -2147483648). If you try to subtract 1 from this value then the value underflows and becomes the maximum positive value, hence the compiler warning.

 1<<31      0x80000000                -2147483648
(1<<31)-1   0x80000000-1 = 0x7fffffff  2147483647 
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I wouldn't say that that's what 1<<31 is, it's really undefined/implementation-defined behaviour... –  Oli Charlesworth Jun 10 '13 at 8:19
    
@OliCharlesworth isn't 1<<32 a UB condition?(assuming int is 32 bits). –  Koushik Jun 10 '13 at 8:24
    
@Koushik: yes, but so is 1<<31. It represents a value outside the range of a 32-bit signed integer. –  Oli Charlesworth Jun 10 '13 at 8:30
    
@OliCharlesworth oh for signed integer, of-course.thanks –  Koushik Jun 10 '13 at 8:32
    
Also, to continue my pedantry, this isn't underflow. AFAIK, underflow refers to numbers that quantise to zero in floating-point. –  Oli Charlesworth Jun 10 '13 at 8:36

The %d prints an integer. When you do (1<<31) you are creating an integer -2147483648, which is the lowest 32 bit number. So when you try (1<<31) - 1 you are trying to represent a negative number which can not be represented by 32 bits! so it underflow and giving you 2147483647 (wrap around).

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