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In C, on a 32-bit machine, I was just wondering if 1>>31 returns -1 given 1 is a signed integer, since for 2's-complement, while doing right shift (arithmetic), sign bit is copied giving the result

1111 1111 1111 1111 1111 1111 1111 1111

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3 Answers 3

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No, the result will be zero in any conforming implementation.

C99, 6.5.7/5 ("Bitwise shift operators") states:

The result of E1 >> E2 is E1 right-shifted E2 bit positions. If E1 has an unsigned type or if E1 has a signed type and a nonnegative value, the value of the result is the integral part of the quotient of E1 / 2^E2. If E1 has a signed type and a negative value, the resulting value is implementation-defined.

Since 1 is nonnegative, the result is the integral quotient of 1 / (2^31) which is obviously zero.

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But why? If the sign of 1 is being copied the result should be 1111... –  Jeffrey Lebowski Oct 4 '12 at 22:04
    
The sign bit of the integer 1 is 0...isn't it? Even if it was a negative number, the result is 'implementation-defined', as noted in the quote from the C standard in the main body of the answer. –  Jonathan Leffler Oct 4 '12 at 22:05
    
You're right, I f***d up on the exam :P –  Jeffrey Lebowski Oct 4 '12 at 22:08

The result will be zero because the the sign bit (most significant bit) is 0 for the integer 1:

0000 0000 0000 0000 0000 0000 0000 0001
^
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The result of 1>>31 is zero because the sign bit of 1 is 0.

However, you can not count on the sign bit being replicated, because according to K&R Second edition the results are implementation-defined for right-shifts of signed values.

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