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Can C++11 compilers (and do they) notice that a function is a constexpr and treat them as such even if they are not declared to be constexpr?

I was demonstrating the use of constexpr to someone using the example straight from the Wikipedia:

int get_five() {return 5;}

int some_value[get_five() + 7]; // Create an array of 12 integers. Ill-formed C++

To my surprise the compiler was OK with it. So, I further changed get_five( ) to take a few int parameters, multiply them and return the result while still not being explicitly declared to be constexpr. The compiler was OK with that as well. It seems that if the compiler can do this there isn't much point to having the restrictions that are required in order to explicitly declare something constexpr.

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Maybe your compiler supports VLA as an extension. Did you consider that? –  0x499602D2 Apr 1 '13 at 19:03
    
What compiler is that? –  icepack Apr 1 '13 at 19:03
    
    
I am using I am using g++ via MinGW-4.6.1 but also using the -std=c++0x and -pedantic switches. I am looking into installing Clang at the moment, per answer by JC below. @Bo - I am talking about the constexpr keyword, which is (supposed to be) required in the declaration of get_five( ) above. –  Arbalest Apr 1 '13 at 20:12
    
@Arbalest - There is no implicit constexpr that I know of, but as Jerry Coffin answers below g++ (depending on exact options set) might allow some C99 features to be used in C++ as well. –  Bo Persson Apr 1 '13 at 20:42
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2 Answers 2

up vote 4 down vote accepted

On a properly-functioning C++11 compiler, your code would be rejected.

Based on its being accepted, you're almost certainly using gcc (or something that closely emulates its bugs). gcc [depending somewhat on flags] can accept array sizes that aren't constant by any measure (e.g., depend on run-time input from the user) because they support an analog of C99 variable-length arrays in C++.

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g++ 4.6.3, 4.7.2 & 4.8 reject this. At least in the liveworkspace version –  icepack Apr 1 '13 at 19:06
    
@icepack: Yes, I believe you can get it to reject code that uses VLA if you choose (but it accepts VLAs in C++ by default). –  Jerry Coffin Apr 1 '13 at 19:08
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@icepack It doesn't reject it when it's in a function: LWS - it does give a warning though! –  us2012 Apr 1 '13 at 19:08
    
@us2012 Interesting. For globals it gives an error though. –  icepack Apr 1 '13 at 19:11
    
That must be it. I am using g++ via MinGW-4.6.1 but also using the -std=c++0x and -pedantic switches. –  Arbalest Apr 1 '13 at 19:39
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A compiler can detect whether or not a function could have been declared with constexpr even when they haven't, for optimization purposes (i.e. computing the result of a function at compile-time). Compilers did that prior to C++11.

But for use in places that requires constant expressions, such as template parameters of integral type, it is against the standard to allow calls to functions that are not declared with the constexpr keyword.

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"A compiler can detect whether or not a function could have been declared with constexpr" Do you have any reference to back this up? –  cseder Oct 28 '13 at 23:26
    
@cseder I find it hard to imagine that any modern compiler wouldn't do it. It is basic knowledge about how compilers work. –  Zyx 2000 Oct 29 '13 at 11:52
    
That's hardly evidence. And when you say "modern compilers" I guess you rule out the latest Visual C++ 2013 compiler, because it does not support automatic memoization. A constexpr is only usable if the result returned from the constexpr function is the same every time and so does not need to include much knowledge about compiling. –  cseder Oct 29 '13 at 15:16
    
I never said anything about memoization. There are other ways for compilers to constant expressions. –  Zyx 2000 Oct 29 '13 at 17:27
    
I just want to know what facts you have to back up your statement. –  cseder Oct 30 '13 at 21:53
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