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My question: When a structure has c-tor, why can't I statically initialize it ?

My compiler claims :

type `myStruct' must be initialized by constructor, not by `{...}'

Why is that ? I'm using gcc version 3.4.4 (cygming special, gdc 0.12, using dmd 0.125)

To illustrate, here is the struct that is rejected by the compiler.

struct myStruct
{
    int a;
    double b;

    myStruct() { a= 0; b = 0.0; }
}

void main()
{
    myStruct ms = {7, 7.7}; // Now this compiler does not accept.
} 
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3  
Please show us some code. –  robert Aug 28 '12 at 15:46
    
Sample code that costs you hours literally to format, until it gets accepted !! It claims I do not have properly indented code by 4 spaces. I do. I can count to 4. struct myStruct { int a; double b; // Now I add here a default c-tor myStruct() { a= 0; b = 0.0; } } void main() { myStruct ms = {7, 7.7}; // Now this compiler does not accept. } –  Peter Aug 28 '12 at 15:46
    
@Peter No need to do that by hand. Paste the code into the editor, select it, hit the button (for Ctrl-K). –  delnan Aug 28 '12 at 15:48
    
I suppose you are talking about array initialization syntax? Because you can only initialize POD types this way... –  Fiktik Aug 28 '12 at 15:48
2  
What code do you think you need to see, @Robert? The question seems perfectly clear to me without any code. –  Rob Kennedy Aug 28 '12 at 15:49

4 Answers 4

The inclusion of a user-defined c-tor means it's no longer an aggregate type. This would also be the case if there was no user-defined c-tor for the struct itself, but you have a non-static data-member of the struct that is not a POD or aggregate type.

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Many thnax for super-fast answers. The code got serialize - though my question got grasped :) :) Thanx for help again ! –  Peter Aug 28 '12 at 15:51
    
@Jason you mean aggregate, not POD. Not all aggregates are POD (and vice versa in C++11). –  ecatmur Aug 28 '12 at 16:18
    
Super-fast, but irrelevant. Who said anything about PODs. He's asking about aggregate initialization, which doesn't require a POD, but (surprise, surprise) and aggregate. –  James Kanze Aug 28 '12 at 16:20
    
@JamesKanze Okay, fixed ... you're having fun with me today! :-) –  Jason Aug 28 '12 at 16:22
    
How does C++11 change this? I know it does things to initializers to help with non-PODs, but does it effect aggregates, just PODs, ...? –  ssube Aug 28 '12 at 16:24

Because the language specifies it that way...

The reason is that the constructor is the designated way to initialize the object to a valid state, so just dumping values into fields directly makes no sense.The ideas is that you either have a collection of values, or a self contained object but what you want to do would make it a little of both.

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Only aggregates may be initialized with an initializer list. Per 8.5.1:1, the inclusion of a user-provided constructor prevents a struct or class from being an aggregate:

8.5.1 Aggregates [dcl.init.aggr]

1 - An aggregate is an array or a class (Clause 9) with no user-provided constructors [...]

In C++03,

8.5.1 - Aggregates [dcl.init.aggr]

1 - An aggregate is an array or a class (clause class) with no user-declared constructors [...]

Aggregates are distinct from PODs ( 9:10); not all aggregates are POD and not all PODs are aggregates; a class with a user-provided destructor could be an aggregate but not a POD, while a class with a non-copy non-default constructor could be POD but not an aggregate.

Demonstration:

#include <type_traits>
#include <iostream>

struct non_pod_aggregate { int i, j; ~non_pod_aggregate() {} };
struct non_aggregate_pod { int i, j; non_aggregate_pod(int) {}
    non_aggregate_pod() = default; };

int main() {
    std::cout << std::is_pod<non_pod_aggregate>::value << '\n'; // false
    std::cout << std::is_pod<non_aggregate_pod>::value << '\n'; // true
    non_pod_aggregate{0, 0};
    // non_aggregate_pod{0, 0}; // does not compile
}

In C++03, all PODs ( 9:4) are aggregates, but it is still possible to have aggregates that are not PODs; as above, a user-provided destructor is enough to disqualify a struct from being POD.

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Keep in mind he's using a pretty old version of gcc, so it's going to be C++03 and not C++11 ... C++11 has relaxed the rules a bit on what is considered a POD-type and what is not when it comes to constructors. –  Jason Aug 28 '12 at 16:00
1  
Section 9/4 of the C++03 standard states: "A POD-struct is an aggregate class that has no non-static data members of type non-POD-struct, non-POD-union (or array of such types) or reference, and has no user-defined copy assignment operator and no user-defined destructor." ... So in order to be an aggregate type, the POD-struct can't have a user-declared constructor of any type, and that includes a non-copy non-default constructor. –  Jason Aug 28 '12 at 16:09
    
@Jason this is aggregate initialization, so the POD rules are not completely relevant. –  juanchopanza Aug 28 '12 at 16:17

In C++03 list-initialization only works for aggregates. You need to change your code to call the constructor:

myStruct ms;

If you want to be able to specify values for all of the members, you need to add a constructor taking enough arguments:

struct myStruct
{
    int a;
    double b;

    myStruct() : a(), b() { }
    myStruct(int a, double b) : a(a), b(b) { }
};

void main()
{
    myStruct ms(7, 7.7);
} 
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