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Even if we declare float a=5.6 then printf("%d",sizeof(!a)) outputs 2. Why does it output size of integer?

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What does ! do in this context? – Lasse V. Karlsen Jun 30 '13 at 10:01
@Alex How do you know that for sure? – Theodoros Chatzigiannakis Jun 30 '13 at 10:03
@Alex : I am using 16-bit environment. – Heisenberg Jun 30 '13 at 10:09
It's scary seeing people assert that sizeof(int) can't be 2. – sh1 Jun 30 '13 at 10:55
I know that, I wanted the OP to figure out the problem. – Lasse V. Karlsen Jun 30 '13 at 13:02

4 Answers 4

up vote 10 down vote accepted

The ! operator returns an integral type, likely int. sizeof(int) == 2 on your architecture, apparently.

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Thats not true because this is a C question. In C, ! returns an int. – Xie Jun 30 '13 at 10:04
Whoops, missed that this was C, not C++. Edited my answer to reflect. – PfhorSlayer Jun 30 '13 at 10:06
@Dibya C has had bool since 1999. – Casey Jun 30 '13 at 10:17
@Casey: that's a library type, not fundamental. The fundamental boolean type is _Bool. – rubenvb Jun 30 '13 at 10:36
@rubenvb but C99 requires bool to be defined to _Bool... – user529758 Jun 30 '13 at 11:27

The ! operator doesn't return the type of the operand. If you perform a NOT on a float, you're not going to get a float back. You are going to get an int with the logically opposite value of the initial float.

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Are you sure, that is what happens? don't you think it performs an implicit cast to an integer first? – TommyA Jun 30 '13 at 10:06
@TommyA First of all, there's no such thing as an "implicit cast", it's an oxymoron. Casts, by definition, are explicit. Explicit type conversion = type casting, implicit type conversion = type promotion or type coercion. Secondly, no, there's no implicit conversion. The floating-point number 0.1 is considered true because it's not zero, although it would be zero if it was converted to an integral type (truncation) beforehand. (Moral: don't teach others C (and stuff) if you don't know it.) – user529758 Jun 30 '13 at 11:29
@H2CO3 I don't know how many question marks are needed for showing people the difference, between asking a question, and "teaching" someone. Mine was clearly asking a question, which you, thank you for that, answered. The moral of your story is real nice, but please improve on the maturity part of it. Thanks for the answer though. – TommyA Jun 30 '13 at 20:37

According to , !E is equivalent to 0==E and as a consequence, it's of type int.

The result of the logical negation operator ! is 0 if the value of its operand compares unequal to 0, 1 if the value of its operand compares equal to 0. The result has type int. The expression !E is equivalent to (0==E).

sizeof(int) is 2 on your 16 bits architecture, explaining why sizeof(!a) outputs 2 on your computer.

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This could help.

void main(){
    int x = !4.3;
    printf("%d",x);//This will print 0
    printf("%d",sizeof(0));//This will print 2
    printf("%d",sizeof(!4.3));//Will print 2

You will find that !4.3 will return a 0. Hence sizeof(!4.3) = sizeof(0) = 2(as 0 is an integer) so sizeof(!4.3)will be 2 .

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I'm not following your reasoning. What does the value have to do with the size? – Theodoros Chatzigiannakis Jun 30 '13 at 10:15
sizeof is evaluated at compile-time. Having uint8_t x = 0 followed by sizeof(x) will have the sizeof evaluate to 1, so your example doesn't make much sense. sizeof is about types, not values. – Thomas Jun 30 '13 at 10:21

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