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Why is sizeof an operator?

Why is sizeof supposed to be an operator in C, & not a function?

Its usage seems similar to that of a function call, as in sizeof(int).

Is it supposed to be some kind of a pseudo-function?

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marked as duplicate by R.., GManNickG, Yossarian, Peter G., Jens Gustedt Oct 17 '10 at 19:29

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Probably because sizeof foo++ does not look like a function call, does not evaluate foo++, and int in sizeof(int) is not an expression. –  R.. Oct 17 '10 at 19:25

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Because it's not a function; it's not possible to write a function that can take a type as an argument and return its size! Note also that sizeof is implemented at compile-time, and that the parentheses aren't necessary if you're using it on a variable.

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A function call is evaluated at runtime. sizeof must be evaluated at compile time (though C99 introduces some exceptions to this, I believe)

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Unless you have a VLA... –  Carl Norum Oct 17 '10 at 19:23

sizeof has its effects at complite time not execution time. You only need the ( ) when you enter a type such as sizeof(int) but if 'i' is of type int you could do sizeof i

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A function in C cannot do what sizeof needs to do.

A function by definition is allocated space at runtime and can operate on data only.

While sizeof operates on datatypes as well, which are compiler specific. A function does not know how to interpret the datatype "int" and ask the compiler for its size, by design.

Before C99 sizeof was totally compile-time, but in the new standard, it can be used to get information at runtime as well, for variable-length arrays.

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function is something you can call at runtime. sizeof is only understood by the compiler.

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