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I read somewhere that bitwise shift automatically turns the operand into an int. But I'm not sure if that statement should be qualified with "if the operands are of unequal type."

char one = 1, bitsInType = 8;
one << (bitsInType - one);

Does the default result of the second line result in an int or char?

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marked as duplicate by Mark Ransom, dreamlax, WhozCraig, 1'', Mihai Maruseac Aug 22 '13 at 5:12

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
@MarkRansom: I do not think that is a good duplicate. That question addresses the fact that the usual arithmetic conversions are not performed. This question addresses the fact that the integer promotions are performed. –  Eric Postpischil Aug 22 '13 at 1:43

2 Answers 2

up vote 2 down vote accepted

The result type is int in normal C implementations.1

Per C 2011 (N1570) 6.5.7, “The integer promotions are performed on each of the operands. The type of the result is the that of the promoted left operand.”

Per 6.3.1.1 2, the integer promotions are, for objects or expressions of integer type with rank less than or equal to the rank of int and unsigned int: “If an int can represent all values of the original type (as restricted by the width, for a bit-field), the value is converted to an int; otherwise, it is converted to an unsigned int.”


1There has been discussion elsewhere in Stack Overflow from which it seems that a bizarre C implementation could have a char of the same width as int, which leads to some unusual behavior.

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C11 Standard, section 6.5.7 Bitwise shift operators, states:

The integer promotions are performed on each of the operands. The type of the result is that of the promoted left operand.

This means that the values are converted to int and then the operation is performed; the result of your expression is int.

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