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When reading the slides about constexpr the introduction is about "surprisingly dynamic initialization with consts". The example is

struct S {
    static const int c;
};
const int d = 10 * S::c;
const int S::c = 5;

Alas, the audio track is missing, so are the notes, so I can only guess what is meant here.

Is it corrrect that d is "surprisingly" initialized dynamically, because S::c is defined before d? That the declaration of S::c is before d is probably not enough, the compiler needs the complete definition, right?

That said, I suspect, that in the following example d would be initialized statically?

struct S {
    static const int c;
};
const int S::c = 5;
const int d = 10 * S::c;  // now _after_ defn of S::c

And to take the cake, in C++11, what would have to be constexpr for full static initialization? S::c, d or both?

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Static members can be declared anywhere in the source file. –  vivek Oct 2 '11 at 11:35
    
I would suspect d is 0 in the case presented in the slides, as if I recall correctly static memory is 0-initialized before it is set to its expected value. –  Matthieu M. Oct 2 '11 at 11:42
    
@vivek the place of declaration is fixed anyway, but the place of initialization is not. While it feels unnatural to me too this should matter for static const`s, we must keep in mind that C++ is not Haskell. –  leftaroundabout Oct 2 '11 at 11:52
    
@vivik: Yes of course. But I think you mean "defined", do you? And even so, that does not relate to my question about static or dynamic initialization... –  towi Oct 2 '11 at 11:53
    
@leftaroundabout: ...but with constexpr it almost becomes it ;-) –  towi Oct 2 '11 at 11:55

4 Answers 4

I believe that the rules laid out in 3.6.2 to determine when static initialization happens do not include the initialization for d, which is therefore dynamic initialization. On the other hand, S::c is indeed statically initialized (since 5 is a constant expression). Since all static initialization happens before dynamic initialization, you get the expected result.

To make d eligible for static initialization, it has to be initialized with a constant expression. This in turn forces you to write the S::c inline:

struct S { static constexpr int c = 5; };

const int d = S::c; // statically initialized

Note that the standard permits dynamic initialization to be replaced by static initialization, which is why reordering the two lines in your original example will cause the two different sorts of initialization. As TonyK points out, you can use array[d] in the static case, but not in the dynamic case, so you can check which one is happening. With the constexpr approach, you're guaranteed to have static initialization and you don't have to rely on optional compiler behaviour.

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"Note that the standard permits dynamic initialization to be replaced by static initialization" Can you show the relevant standard text? –  curiousguy Dec 7 '11 at 4:09
    
An implementation is permitted to perform the initialization of a non-local variable with static storage duration as a static initialization even if such initialization is not required to be done statically, provided that — the dynamic version of the initialization does not change the value of any other object of namespace scope prior to its initialization, and — the static version of the initialization produces the same value in the initialized variable as would be produced by the dynamic initialization if all variables not required to be initialized statically were initialized dynamically. –  curiousguy Dec 7 '11 at 6:11
    
"so you can check which one is happening." No you can't. –  curiousguy Dec 7 '11 at 6:13
    
@curiousguy: What's the problem? The declaration char a[d]; will compile if d can be initialized statically, which works in one of the two cases but not the other, even though according to the standard, d is never guaranteed to be statically initialized. –  Kerrek SB Dec 7 '11 at 11:54
    
So you are not saying that d is a constant expression iff d happens to be initialized statically? Can you show an example where d is not guaranteed to be statically initialized, but int a[d]; is legal? –  curiousguy Dec 7 '11 at 13:39

For static initialization one needs, roughly speaking, a constant-expression initializer.

To be a constant-expression, roughly speaking, a variable needs to be of a const type and have a preceding initialization with a constant-expression.

In the first example d's initializer is not a constant-expression, as S::c isn't one (it has no preceding initialization). Hence, d is not statically initialized.

In the second example d's initializer is a constant-expression, and everything is OK.

I'm simplifying matters. In full formal standardese this would be about nine times longer.


As for constexpr specifier, no object has to be declared constexpr. It is just an additional error-check. (This is about constexpr objects, not constexpr functions).

You may declare S::c constexpr in the second variant if you want some extra error protection (perhaps 5 will start changing its value tomorrow?) Adding constexpr to the first variant cannot possibly help.

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As an additional "error check"? Checking what? You probably mean "checking if dynamic initialization is possible", do you? –  towi Oct 2 '11 at 12:20
    
@towi: No, I mean "checking if this is indeed a constant expression, as suggested by the mnemonics of constexpr". –  n.m. Oct 2 '11 at 12:25

In the first example, d is not initialized by a constant expression, because S::c is not

a non-volatile const object with a preceding initialization, initialized with a constant expression

(see C++11 [expr.const]p2, bullet on lvalue-to-rvalue conversions), because the initialization of S::c does not precede the initialization of d. Therefore static initialization will be used for S::c (because it is initialized by a constant expression), but dynamic initialization can be used for d.

Since static initialization precedes dynamic initialization, d would be initialized to 50 by its dynamic initializer. The compiler is permitted to convert the dynamic initialization of d to static initialization, but if it does, it must produce the value that d would have had if every variable which could have used dynamic initialization had, in fact, used dynamic initialization. In this case, d is initialized to 50 either way. See C++11 [basic.start.init]p2 for more information on this.

There is no way to add constexpr to the first example to guarantee that static initialization is used for d; in order to do that, you must reorder the initializations. However, adding constexpr will produce a diagnostic for the first example, which will at least allow you to ensure that dynamic initialization is not used (you get static initialization or a compilation error).

You can update the second case to ensure that static initialization is used as follows:

struct S {
    static const int c; // do not use constexpr here
};
constexpr int S::c = 5;
constexpr int d = 10 * S::c;

It is ill-formed to use constexpr on a variable declaration which is not a definition, or to use it on a variable declaration which does not contain an initializer, so const, not constexpr must be used within the definition of struct S. There is one exception to this rule, which is when defining a static constexpr data member of a literal, non-integral type, with the initializer specified within the class:

struct T { int n; };
struct U {
    static constexpr T t = { 4 };
};
constexpr T U::t;

In this case, constexpr must be used in the definition of the class, in order to permit an initializer to be provided, and constexpr must be used in the definition of the static data member, in order to allow its use within constant expressions.

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Exactly. I wanted to understand the a/the reason behind the new constexpr. Thus, I wanted to make sure that I got a good reason for constexpr here. You confirmed my understanding. –  towi Dec 31 '11 at 15:42

You can find out whether a constant is statically or dynamically initialised by trying to declare an array:

struct S {
    static const int c;
};
const int d = 10 * S::c; // (1)
const int S::c = 5;      // (2)

static char array[d];

This code fails in g++ version 4.7.0, because d is dynamically initialised. And if you exchange (1) and (2), it compiles, because now d is statically initialised. But I can't find another way to fix it, using constexpr.

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Hmm, I think there was a late change in constexpr. First a definition could only depend on previous definitions in the same file. I though this had changed later in the process to a more general approach, but I am not sure. Maybe gcc just has not learned this yet? –  towi Oct 2 '11 at 11:50
    
This replacement of dynamic by static initialization is explicitly allowed by the standard (3.6.2). There's even an example in there where this replacement produced unspecified behaviour. –  Kerrek SB Oct 2 '11 at 11:56
    
@TonyK: of course the problem with the array[d] diagnosis utility is when you're definition large constants (build timestamp, for example...) –  Matthieu M. Oct 2 '11 at 11:58
    
@Matthieu: Then just say static char array[d & 15] ; instead. –  TonyK Oct 2 '11 at 12:22
1  
static_assert( sizeof(int[d]), "" ); works and involves no actual object. –  Luc Danton Oct 2 '11 at 12:38

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