17

According to here, explicit:

Specifies constructors and conversion operators (since C++11) that don't allow implicit conversions or copy-initialization.

Thus, are these two techniques identical?

struct Z {
        // ...
        Z(long long);     // can initialize with a long long
        Z(long) = delete; // but not anything smaller
};

struct Z {
        // ...
        explicit Z(long long);     // can initialize ONLY with a long long
};
17

They're not identical.

Z z = 1LL;

The above works with the non-explicit version, but not with the explicit version.

Declaring constructor of Z explicit doesn't prevent conversion of the constructor argument from another type. It prevents the conversion from the argument to Z without calling the constructor explicitly.

Below is an example of explicit constructor call.

Z z = Z(1LL);
  • 3
    Note, that calls the explicit constructor, and also the copy/move constructor. Z z(1LL); would call only the explicit constructor. – immibis Apr 19 '16 at 21:09
24

No, they're not the same. explicit disallows implicit conversions to that type if that constructor is selected - implicit conversions in arguments don't matter. delete disallows any construction if that constructor is selected, and can be used to disallow implicit argument conversion.

So for instance:

struct X {
    explicit X(int ) { }
};

void foo(X ) { }

foo(4);      // error, because X's constructor is explicit
foo(X{3});   // ok
foo(X{'3'}); // ok, this conversion is fine

That is separate from deleteing a constructor:

struct Y {
    Y(int ) { }
    Y(char ) = delete;
};

void bar(Y ) { }

bar(4);      // ok, implicit conversion to Y since this constructor isn't explicit
bar('4');    // error, this constructor is deleted
bar(Y{'4'}); // error, doesn't matter that we're explicit

The two techniques are also orthogonal. If you want a type to not be implicitly-convertible and only constructible from exactly an int, you can do both:

struct W {
    explicit W(int ) { }

    template <class T>
    W(T ) = delete;
};

void quux(W );

quux(4);      // error, constructor is explicit
quux('4');    // error, constructor is deleted
quux(4L);     // error, constructor is deleted
quux(W{'4'}); // error, constructor is deleted
quux(W{5});   // ok
  • blech, unnecessary use of uniform init. Use direct init plix. – Puppy Apr 19 '16 at 19:53
  • 2
    @Puppy You downvoted me because I used braces? Seriously? – Barry Apr 19 '16 at 19:55
  • 3
    @Puppy Btw, W{5} is direct initialization... – Barry Apr 19 '16 at 20:07
  • 2
    Actually, brace initializers are also encouraged by Stroustrup (section 6.3.5, "The C++ Programming Language - 4th ed.", B.S., 2013). – Francis Straccia Apr 19 '16 at 20:27
  • 1
    @Puppy: They call it uniform init because it always works and is never wrong. Why would you possibly want to avoid that? – Kevin Apr 19 '16 at 22:28
5

explicit blocks implicit conversion to your type.

Your =delete technique blocks implicit conversion from long to long long.

These are almost unrelated.

There are 4 cases that illustrate the difference:

Z z = 1L;
Z z = 1LL;

is an implicit conversion from long and long long to Z.

Z z = Z(1L);
Z z = Z(1LL);

is an explicit conversion from long and long long to Z.

explicit Z(long long) blocks:

Z z = 1L;
Z z = 1LL;

while Z(long)=delete blocks:

Z z = 1L;
Z z = Z(1L);

explicit Z(long long) allows Z z = Z(1L) because the conversion from long to long long is implicit, but unrelated to the explicit conversion to Z that happens afterwards.

Note that a mixture of explicit and =delete leaves only Z z=Z(1LL) as valid among your 4 versions.

(the above presumes a valid copy or move ctor; if not, replace Z z=Z(...) with Z z(...) and the same conclusions result).

2
struct Zb {
        Zb(long long)
        {};     // can initialize with a long long
        Zb(long) = delete; // but not anything smaller
    };

struct Za {
        // ...
        explicit Za(long long)
        {};     // can initialize ONLY with a long long
    };

int main()
{
    Za((long long)10);  // works
    Za((long)10);       // works    

    Zb((long long)10);  // works
    Zb((long)10);       // does not work

    return 0;
}

Your example requires explicit deleting.

Live: http://cpp.sh/4sqb

1

They are not the same.

From the standard working draft n4296:

12.3.1 - [class.conv.ctor]:
1 A constructor declared without the function-specifier explicit specifies a conversion from the types of its parameters to the type of its class. Such a constructor is called a converting constructor.

2 An explicit constructor constructs objects just like non-explicit constructors, but does so only where the direct-initialization syntax (8.5) or where casts (5.2.9, 5.4) are explicitly used. A default constructor may be an explicit constructor; such a constructor will be used to perform default-initialization or valueinitialization (8.5).

Followed by an example of each one respectively:

struct X {
    X(int);
    X(const char*, int =0);
    X(int, int);
};

void f(X arg) {
    X a = 1;        // a = X(1)
    X b = "Jessie"; // b = X("Jessie",0)
    a = 2;          // a = X(2)
    f(3);           // f(X(3))
    f({1, 2});      // f(X(1,2))
}

With explicit constructor:

struct Z {
    explicit Z();
    explicit Z(int);
    explicit Z(int, int);
};

Z a;                      // OK: default-initialization performed
Z a1 = 1;                 // error: no implicit conversion
Z a3 = Z(1);              // OK: direct initialization syntax used
Z a2(1);                  // OK: direct initialization syntax used
Z* p = new Z(1);          // OK: direct initialization syntax used
Z a4 = (Z)1;              // OK: explicit cast used
Z a5 = static_cast<Z>(1); // OK: explicit cast used
Z a6 = { 3, 4 };          // error: no implicit conversion

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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