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int value = 5; // this type of assignment is called an explicit assignment
int value(5); // this type of assignment is called an implicit assignment

What is the difference between those, if any, and in what cases do explicit and implicit assignment differ and how?


http://weblogs.asp.net/kennykerr/archive/2004/08/31/Explicit-Constructors.aspx

EDIT: I actually just found this article, which makes the whole thing a lot clearer... and it brings up another question, should you (in general) mark constructors taking a single parameter of a primitive type - numeric/bool/string - as explicit and leave the rest as they are (of course keeping watch for gotchas such as constructors like (int, SomeType = SomeType())?

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3  
This smells like homework. If it is, please tag it as such. –  greyfade Jun 16 '10 at 23:22
    
Not homework, just a note I had from a long time ago that I never investigated. What does tagging something as homework do, anyways? –  Jake Petroules Jun 16 '10 at 23:31
1  
It makes it clear the question is homework. =] Typically, people answering the question will prefer giving hints to providing the entire answer. –  strager Jun 16 '10 at 23:36
1  
Just for the record, I have this question, and it's not homework. :) Just a point on the learning curve, I suppose. –  Steve Aug 25 '12 at 3:15

3 Answers 3

up vote 7 down vote accepted

They differ if a class has a constructor marked 'explicit'. Then, one of these does not work.

Otherwise, no difference.

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Neither of these is an assignment of any kind -- they're both initialization. The first uses copy initialization, and the second direct initialization. (FWIW, I'm pretty sure I've never heard the terms "explicit assignment" or "implicit assignment" before).

Edit: (Mostly in response to Nathan's comment):

Here's a corrected version of the code from your comment:

#include <iostream>

struct Foo { 
    Foo() { 
        std::cout << "Foo::ctor()" << std::endl; 
    } 
    Foo(Foo const& copy) { 
        std::cout << "Foo::cctor()" << std::endl; 
    } 
    Foo& operator=(Foo const& copy) { 
        std::cout << "foo::assign()" << std::endl; 
        return *this; 
    } 
};

int main(int, const char**) { 
    Foo f; 
    Foo b(f); 
    Foo x = b;
    return 0; 
}

The result from running this should be:

Foo::ctor()
Foo::cctor()
Foo::cctor()

If you run it and get an foo::assign(), throw your compiler away and get one that works (oh, and let us know what compiler it is that's so badly broken)!

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Not necessarily true. With a POD type, yes, your statement is accurate. If the type in question was user defined, it's perfectly possible that there's a user-defined assignment operator that does the conversion without there being a similar copy constructor. Odd, yes. However, possible. –  Nathan Ernst Jun 16 '10 at 23:41
    
Also, the first is assignment. Only the second is initialization. That the first can and will almost assuredly be inlined to an equivalent copy initialization does not detract from it being an assignment. The assumption that copy initialization and copy assignment are the same is flawed and is not guaranteed. –  Nathan Ernst Jun 16 '10 at 23:43
5  
@Nathan: This answer is correct. §8.5/12 defines "copy-initialization" to be any initialization of the form T x = a;, and "direct-initialization" to be any initialization of the form T x(a);. Both are initialization. –  GManNickG Jun 16 '10 at 23:53
    
@Nathan, You have it backwards. Foo bar = baz; will never result in an assignment (unless a constructor happens to be implemented in terms of operator=), it is always copy initialization. It will at most result in code equivalent to Foo bar(static_cast<Foo>(baz)); and at least result in code equivalent to Foo bar(baz);. It will never result in code equivalent to Foo bar; bar = baz;. In other words, there is no assignment going on. See section 8.5 14-16 of the draft C++0x standard (N3092) (citing this because I don't have a copy of the current standard but this hasn't changed). –  Logan Capaldo Jun 17 '10 at 0:04
    
@Nathan Ernst: Absolutely incorrect. Neither form will ever call the assignment operator. These initialization are always handled by constructors (possibly involving conversion operators), but if some constructor is missing the code will not compile. Assignment will never be used instead. –  AndreyT Jun 17 '10 at 0:07

Only the first one is an assignment. They are both initialization.

Edit: actually, I'm wrong. Neither are assignment.

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2  
None of those is an assigment. Assignment and initialization are mutually exclusive terms. –  FredOverflow Jun 16 '10 at 23:27
    
heh...just as I was editing :P –  Crazy Eddie Jun 16 '10 at 23:29

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