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I try to search an answer to my question... What is the type of this expression will be at C language?

unsigned short a, b;
a = 0x1;
b = 0x2;
if((a ^ b) > 0) //This expression... 
...

I understand that this is not a completely correct code that can cause an error. I should use != instead >.

I think that the type of the result of the expression will be unsigned int. I read about it in Stephen Pratt’s book.

If we have two types, then the result of an expression involving these types must be a superior type. (int or unsigned int)

If these two variables have any other values, can it be that this expression will be less than zero? (If we set the most significant bit in the number, it will become negative, provided that it has signed data type)

I think it is impossible, but I could be wrong. I made my guess, but I want to know the correct answer to my question.

8
  • 3
    Unless INT_MAX is smaller than USHORT_MAX, the expression will be of type int. Hence, to have a minimal reproducible example, you need to post the relevant values from limits.h. – EOF May 29 '19 at 20:10
  • Result of XOR can't be more than 0xFFFF. Thanks. – Noisy88 May 29 '19 at 20:13
  • How do you figure that out? – EOF May 29 '19 at 20:14
  • 2
    The maximum value an unsigned short can hold is not 0xFFFF, it's USHRT_MAX, which has an implementation defined value no smaller than 65535. Consequently, the value can be larger. Moreover, the value of INT_MAX is also implementation defined and may be as low as 32767. – EOF May 29 '19 at 20:22
  • 2
    Which expression are you asking about, a ^ b, (a ^ b), (a ^ b) > 0, or something else? – Eric Postpischil May 29 '19 at 20:30
1

The expression a ^ b likely has type int, but will have type unsigned int in the event that there are any values that can be represented as unsigned shorts but not as ints. Its value will not exceed USHRT_MAX for general a and b of type unsigned short, and will be exactly 3 for the specific a and b in the example.

(From comments:)

I wondered if it could happen that the result of [(a^b)] would be a negative number. in this case, the result of the expression ((a^b) > 0) will be a false

It will never evaluate to a negative number because whether the usual arithmetic promotions result in the operands being converted to int or to unsigned int, the resulting values will be unchanged, and therefore non-negative. Neither operand's sign bit, if any, will be set, so the result's sign bit, if any, will not be set either.

The expression (a ^ b) > 0 has type int, and it evaluates to 1 for the given a and b. More generally, it evaluates to the same result as a != b for a and b of integer type. Of course, that can evaluate to 0. On the other hand, the related expression (a ^ b) >= 0 will always evaluate to 1 for a and b of unsigned type.

2

In (a ^ b) > 0, where a and b are unsigned short:

  • If unsigned short is narrower than int, a and b are each converted to int (per the integer promotions, C 2018 6.3.1.1 2, and because unsigned short being narrower than int necessarily means int can represent all values of unsigned short).
  • Otherwise, a and b are converted to unsigned int (ibid).
  • For a ^ b, the usual arithmetic conversions are performed (6.5.11). In this expression, the usual arithmetic conversions do not change the types (6.3.1.8 1). Also per the usual arithmetic conversions, the result has the same type as the operands after the conversions. Thus, the result is int or unsigned int as described above.
  • (a ^ b) has the same type as a ^ b (6.5.1 5).
  • For (a ^ b) > 0, the result has type int (6.5.8 6).

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