8

Consider the following class:

class Foo {
  int a, b;
public:
  Foo() : a{1}, b{2} {} // Default ctor with member initializer list
  //Foo() : a{1}, b{2} = default; // Does not work but why?
};

(Edit: because it was mentioned in a couple of answers - I'm aware of in-class member initializiers, but that's not the point here)

I think the second ctor definition would be more elegant and fit better into modern C++ code (see also why you should use =default if you have to be explicit about using the default semantics). However, no common compiler seems to accept it. And cppreference is silent about it.

My first thought was that a member initializer list in a way changes the "default semantics" as explained in the linked FAQ, because it may or may not default-construct members. But then we would have the same problem for in-class initializers, just that here Foo() = default; works just fine.

So, why is it disallowed?

  • 5
    As soon as you've defined initialisers in the ctor you've provided a ctor and it's no longer the default. – Jonathan Potter Jun 5 '19 at 12:38
  • 2
    Because "Default ctor with member initializer list" is not a default ctor. You can use inline initialization with "=default" though. – Steve Jun 5 '19 at 12:38
  • 1
    @Quimby that's not an argument, since this is always the case. Also that's not the reason for =default, see also the referenced C++ FAQ – andreee Jun 5 '19 at 12:40
  • 2
    Could you explain what you would expect it to mean? – molbdnilo Jun 5 '19 at 12:42
  • 2
    Indeed, {} and =default accomplish different things. {} is generally not what you want as it kills implicitly generated default move constructor/operator. – unexpectedvalue Jun 5 '19 at 12:45
11

= default; is an entire definition all on its own. It's enforced, first and foremost, grammatically:

[dcl.fct.def.general]

1 Function definitions have the form

function-definition:
    attribute-specifier-seqopt decl-specifier-seqopt declarator virt-specifier-seqopt function-body

function-body:
    ctor-initializeropt compound-statement
    function-try-block
    = default ;
    = delete ; 

So it's either a member initializer list with a compound statement, or just plain = default;, no mishmash.

Furthermore, = default means something specific about how each member is initialized. It means we explicitly want to initialize everything like a compiler provided constructor would. That is in contradiction to "doing something special" with the members in the constructor's member initializer list.

  • Regarding your last paragraph: What about in-class member initializers then? defining int a = 1; int b = 2 in the class and using Foo() = default; works just fine. Wouldn't that be a contradiction? – andreee Jun 5 '19 at 12:48
  • 4
    @andreee - No. Because if you omit Foo() = default, the default member initializers are still in effect. That is what the compiler provided constructor will do. – StoryTeller - Unslander Monica Jun 5 '19 at 12:48
  • Thanks, that makes sense now. I also liked @NathanOliver's answer a lot, but I like this one slightly better (and you cannot accept two questions :-)). – andreee Jun 5 '19 at 13:16
7

Doing a{1}, b{2} means you no longer can specify it as default. A default function per [dcl.fct.def.default]/1 is defined as

A function definition whose function-body is of the form = default; is called an explicitly-defaulted definition.

And if we check what a function-body is in [dcl.fct.def.general]/1 we see that it contains a ctor-initializer which is a mem-initializer-list

This means you can't initialize members if you want a default definition provided by the compiler.

What you can do to work around this is to specify the default values in the class directly, and then declare the constructor as default like

class Foo {
  int a{1}, b{2};
public:
  Foo() = default;

};
3

This doesn't directly answer the question, however it is the c++ "way" is to use the default member initializer instead, that it

class Foo {
  int a = 1, b = 2;
public:
  Foo() = default; 
};

The syntax you purpose is simply not a default, per se, constructor anymore.

  • Thanks, but as mentioned in my question, this is not what I was interested in. – andreee Jun 5 '19 at 13:18
2

It's disallowed because what you're trying to do by definition means it's no longer a default constructor. And there's a more elegant way of accomplishing what you want anyway:

class Foo {
  int a {1};
  int b {2};
public:
  Foo() = default;
};
  • Thanks, but as mentioned in my question, this is not what I was interested in. – andreee Jun 5 '19 at 13:18
  • You mean, as you mentioned in an edit to your question after this answer had been posted? – Steve Jun 5 '19 at 13:19
  • Yes. But I also mentioned in-class initializers in my original post and that it doesn't pose a problem there (second last paragraph). That was just a remark, no offense :-) – andreee Jun 5 '19 at 13:20
  • 1
    a default constructor is by definition one that can be called with no arguments. see here en.cppreference.com/w/cpp/language/default_constructor – idclev 463035818 Jun 5 '19 at 13:37

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