Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

The last sentence of §6.3.5.1 from Stroustrup's The C++ Programming Language (4th edition here) is:

A member of an array or a class is default initialized if the array or structure is.

However, this test shows uninitialized members of a default initialized object (I also tried with g++4.7 -std=c++11)

#include <iostream>

struct Foo
{
    int i;

    Foo();
};

Foo::Foo() {}

int main()
{
    Foo f;
    std::cout << "f.i: " << f.i << std::endl;

    return 0;
}

I must be missing something, but is there an explanation that doesn't mean an error in Stroustrup's affirmation?


EDIT: After the answers I understand that the concept of default initialized is supposed to include what is called uninitialized in other parts of the text (e.g. in §17.3.1). This sounds very unclear to me. In fact, using uninitialized to mean anything other than "not explicitly user-initialized" (as is the case in there) is a contradiction: some things are default initialized and yet uninitialized. Unless one drops the natural language evidence that X and un-X classify opposite, exclusive sets of things...

Also, an earlier sentence in the same section (§6.3.5.1) reads

Local variables [...] are not initialized by default unless they are of user-defined types with a default constructor [...]

The contradiction is apparent here again. Accepting both the first and latter statements to be true implies that there are variables (namely local variables) that are simultaneously default initialized and not initialized by default.

IMHO this is, at best, a very unclear use of natural language to describe something.

share|improve this question
1  
I think of it as: "default initialization" can be "initialized to an undefined value". It is initialized, and safe to write to, but undefined to read from. But yes, the wording is confusing and does contradict itself. – Mooing Duck Jul 9 '13 at 20:49

Per § 8.5/7:

To default-initialize an object of type T means:
— if T is a (possibly cv-qualified) class type (Clause 9), the default constructor for T is called (and the initialization is ill-formed if T has no accessible default constructor);
— if T is an array type, each element is default-initialized;
— otherwise, no initialization is performed.

int falls in the last point, so it is left uninitialized. If your member had the type, say, std::string, it would call the default constructor of std::string and you'd have an empty string.

share|improve this answer
    
I think it is unclear at best. From the previous text you would understand a default initialized int to have a value of 0 (this would be the case with a global int variable, for instance). In fact, the previous page reads "Local variables [...] are not initialized by default unless they are of user-defined types with a default constructor". So, this would be a variable that is default-initialized (by the definition you posted) but would not have been initialized by default... doesn't sound very coherent to me – ricab Jul 4 '13 at 20:29
3  
@ricab, The standard defines default-initialization, value-initialization, and zero-initialization. Uninitialization isn't one of those categories. To your global variable comment, those are zero-initialized (§ 3.6.2/2), which for int (and basically everything) means 0. Value-initializing an int would also give you 0. However, default-initializing it would not, it would leave it uninitialized. That's the default thing to do when you declare an ordinary local int without any initializer. int is not a user-defined type, so it is not initialized by default. – chris Jul 4 '13 at 20:35
1  
@ricab, The fact that default-initialization can leave things uninitialized might sound weird, but it does make categorizing everything easier. – chris Jul 4 '13 at 20:36
    
@ricab: It's not unclear. It's just not what you expected. – Kerrek SB Jul 4 '13 at 21:30
    
@chris got it, your answer together with your first comment answers the original question. Still, it then sounds like the wrong statement is the one I quoted before: "Local variables [...] are not initialized by default unless [...]". Accepting both of these (half-page separated) statements to be true implies that there are variables that are default initialized but not initialized by default. It is indeed not what I expected and I still think it unclear. – ricab Jul 5 '13 at 7:50

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.