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Someone posted in a comment to another question about the meaning of the explicit keyword in C++. So, what does it mean?

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8  
Well, in the original question, this wasn't an appropriate answer and the comment section is only 300 characters which wasn't enough space. However, my answer cannot be marked as the correct/accepted one. –  Skizz Sep 23 '08 at 16:34
86  
Nils: Why is it not nice? Is the answer somehow worse because it was posted by the original poster? This is encouraged in FAQ, see meta.stackexchange.com/questions/12513. –  zoul Oct 3 '09 at 9:01
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This is why these should be wikis. –  Will Nov 19 '10 at 13:53
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The explicit keyword prevents an implicit conversion. –  Software_Developer Jul 25 '12 at 10:17
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I just want to point out to anyone new coming along that ever since C++11, explicit can be applied to more than just constructors. It's now valid when applied to conversion operators as well. Say you have a class BigInt with a conversion operator to int and an explicit conversion operator to std::string for whatever reason. You'll be able to say int i = myBigInt;, but you'll have to cast explicitly (using static_cast, preferably) in order to say std::string s = myBigInt;. –  chris Aug 30 '12 at 16:52

8 Answers 8

up vote 1058 down vote accepted

In C++, the compiler is allowed to make one implicit conversion to resolve the parameters to a function. What this means is that the compiler can use single parameter constructors to convert from one type to another in order to get the right type for a parameter. Here's an example class with a constructor that can be used for implicit conversions:

class Foo
{
public:
  // single parameter constructor, can be used as an implicit conversion
  Foo (int foo) : m_foo (foo) 
  {
  }

  int GetFoo () { return m_foo; }

private:
  int m_foo;
};

Here's a simple function that takes a Foo object:

void DoBar (Foo foo)
{
  int i = foo.GetFoo ();
}

and here's where the DoBar function is called.

int main ()
{
  DoBar (42);
}

The parameter is not a Foo object, but an int. However, there exists a constructor for Foo that takes an int so this constructor can be used to convert the parameter to the correct type.

The compiler is allowed to do this once for each parameter.

Prefixing the explicit keyword to the constructor prevents the compiler from using that constructor for implicit conversions. Adding it to the above class will create a compiler error at the function call DoBar (42). It is now necessary to call for conversion explicitly with DoBar (Foo (42))

The reason you might want to do this is to avoid accidental construction that can hide bugs. Contrived example:

  • You have a MyString(int size) class with a constructor that constructs a string of the given size. You have a function print(const MyString&), and you call it with print(3). You expect it to print "3", but it prints an empty string of length 3 instead.
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62  
nice write up, you might want to mention multi-arg ctors with default params can also act as single arg ctor, e.g., Object( const char* name=NULL, int otype=0). –  maccullt Sep 24 '08 at 1:23
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I think it should also be mentioned that one should consider making single argument constructors explicit initially (more or less automatically), and removing the explicit keyword only when the implicit conversion is wanted by design. I think contructors should be explicit by default with an 'implicit' keyword to enable them to work as implicit conversions. But that's not how it is. –  Michael Burr Aug 26 '09 at 17:47
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@thecoshman: You don't declare a parameter explicit -- you declare a constructor explicit. But yes: your parameters of type Foo have to be constructed explicitely, they won't be silently constructed by just plugging their constructor's parameters into the function. –  Christian Severin Jun 17 '11 at 12:12
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Just an FYI that when calling "print(3)" in your example, the function needs to be "print(const MyString &"). The "const" is mandatory here because 3 is converted to a temporary "MyString" object and you can't bind a temporary to a reference unless it's "const" (yet another in a long list of C++ gotchas) –  Larry Jul 10 '12 at 12:52
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For completeness sake, I am adding that in addition to parameter conversion the explicit keyword here will also prevent the use of assignment form of a copy ctor (e.g., Foo myFoo = 42;) and require the explicit forms Foo myFoo = Foo(42); or Foo myFoo(42); –  Arbalest Dec 15 '12 at 0:53

Suppose you have a class String

class String {
public: 
    String(int n); // allocate n bytes to the String object 
    String(const char *p); // initializes object with char *p 
} 

Now if you try

String mystring = 'x';

the char 'x' will be converted to int and will call String(int) constructor. But this is not what the user might have intended. So to prevent such conditions, we can define the class's constructor as explicit.

class String { 
public: 
    explicit String (int n); //allocate n bytes
    String(const char *p); // initialize sobject with string p 
} 
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40  
I +1'ed this because it has no void main and it explains why one should use it, instead of just explaning what it means. –  Johannes Schaub - litb Nov 8 '10 at 13:27
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And it's worth noting that the new generalized initialization rules of C++0x will make String s = {0}; ill-formed, rather than trying to call the other constructor with a null pointer, as String s = 0; would do. –  Johannes Schaub - litb Dec 13 '10 at 8:59
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This answer is the best –  Matt M. Dec 14 '11 at 19:34
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I like your answer. Its short, sweet and to the point. Saved me a lot of reading when time is short. Most importantly it gives an illustration of the practical usage as Johannes pointed earlier. –  enthusiasticgeek Jun 14 '12 at 21:01
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Even though this is an old question it seems worth pointing a few things out (or having someone set me straight). By making the int form, or both ctors, 'explicit' you would still have the same bug if you used String mystring('x') when you meant String mystring("x") wouldn't you? Also, from the comment above I see the improved behavior of String s = {0} over String s = 0 thanks to making the int form of the ctor 'explicit'. But, other than knowing the precedence of the ctors how do you know the intent (i.e. how to spot the bug) of this String s{0} ? –  Arbalest Aug 5 '13 at 5:23

In C++, a constructor with only one required parameter is considered an implicit conversion function. It converts the parameter type to the class type. Whether this is a good thing or not depends on the semantics of the constructor.

For example, if you have a string class with constructor String(const char* s), that's probably exactly what you want. You can pass a const char* to a function expecting a String, and the compiler will automatically construct a temporary String object for you.

On the other hand, if you have a buffer class whose constructor Buffer(int size) takes the size of the buffer in bytes, you probably don't want the compiler to quietly turn ints into Buffers. To prevent that, you declare the constructor with the explicit keyword:

class Buffer { explicit Buffer(int size); ... }

That way,

void useBuffer(Buffer& buf);
useBuffer(4);

becomes a compile-time error. If you want to pass a temporary Buffer object, you have to do so explicitly:

useBuffer(Buffer(4));

In summary, if your single-parameter constructor converts the parameter into an object of your class, you probably don't want to use the explicit keyword. But if you have a constructor that simply happens to take a single parameter, you should declare it as explicit to prevent the compiler from surprising you with unexpected conversions.

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Really well done answer and should not be overlooked here –  Paul Renton Aug 9 '13 at 15:31
    
A great answer that explains what explicit keyword AND the rationale behind it! –  Miyazawa Kenji Feb 16 at 23:21

The explicit keyword makes a conversion constructor to non-conversion constructor. As a result, the code is less error prone.

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The explicit-keyword can be used to enforce a constructor to be called explicitly.

class C{
public:
    explicit C(void) = default;
};

int main(void){
    C c();
    return 0;
}

the explicit-keyword in front of the constructor C(void) tells the compiler that only explicit call to this constructor is allowed.

The explicit-keyword call also be used in user-defined type cast operators:

class C{
public:
    explicit inline operator bool(void) const{
        return true;
    }
};

int main(void){
    C c;
    bool b = static_cast<bool>(c);
    return 0;
}

Here, explicit-keyword enforces only explicit casts to be valid, so bool b = c; would be an invalid cast in this case. In situations like these explicit-keyword can help programmer to avoid implicit, unintended casts.

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4  
C c(); in the first example doesn't mean what you think it means: it's the declaration of a function named c that takes no parameters and returns an instance of C. –  6502 Feb 19 at 21:25

This has already been discussed (what is explicit constructor). But I must say, that it lacks the detailed descriptions found here.

Besides, it is always a good coding practice to make your one argument constructors (including those with default values for arg2,arg3,...) as already stated. Like always with C++: if you don't - you'll wish you did...

Another good practice for classes is to make copy construction and assignment private (a.k.a. disable it) unless you really need to implement it. This avoids having eventual copies of pointers when using the methods that C++ will create for you by default. An other way to do this is derive from boost::noncopyable.

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5  
broken link. –  Lazer Jun 25 '10 at 20:05

This answer is about object creation with/without an explicit constructor since it is not covered in the other answers.

Consider the following class without an explicit constructor:

class Foo
{
public:
    Foo(int x) : m_x(x)
    {
    }

private:
    int m_x;
};

Objects of class Foo can be created in 2 ways:

Foo bar1(10);

Foo bar2 = 20;

Depending upon the implementation, the second manner of instantiating class Foo may be confusing, or not what the programmer intended. Prefixing the explicit keyword to the constructor would generate a compiler error at Foo bar2 = 20;.

It is usually good practice to declare single-argument constructors as explicit, unless your implementation specifically prohibits it.

Note also that constructors with

  • default arguments for all parameters, or
  • default arguments for the second parameter onwards

can both be used as single-argument constructors. So you may want to make these also explicit.

An example when you would deliberately not want to make your single-argument constructor explicit is if you're creating a functor (look at the 'add_x' struct declared in this answer). In such a case, creating an object as add_x add30 = 30; would probably make sense.

Here is a good write-up on explicit constructors.

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Here is one more good example for explicit in C++ http://www.glenmccl.com/tip_023.htm

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