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All C++ operators that I have worked with return something, for example the + operator returns the result of the addition.

Do all C++ operators return something, or are there some C++ operators that do not return anything?

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    That depends on how narrowly you define the term "operator". – molbdnilo yesterday
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    This is not forced by the standard - for example you can implement += to return void, but this is not recommended. Also function call operators can return void and this is valid – Mircea Ispas yesterday
  • Hmm. I have a hunch that scope resolution operator :: doesn't return anything, but I'd have to consult standard to make sure. – Yksisarvinen yesterday
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    Is the context of the question for C++ provided types only, or does it also include user-defined types? – Eljay yesterday
  • @Eljay Only the C++ provided types. – user8240761 yesterday
49
1

Although probably not exactly what you are thinking about, but the delete and delete[] C++ 'keywords' are actually operators; and they are defined as void types - which means they evaluate to nothing (not 'something').

From cppreference:

void operator delete ( void* ptr ) noexcept;
void operator delete[]( void* ptr ) noexcept;

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    I like your answer, it made me think of the question differently. delete, delete[], throw, (void)x; cast, left side of , operator, right side of , operator that yields a void, a ?: ternary that uses a throw for one of the arms, dfri's operator void() (which would be user defined), 眠りネロク's void operator()() (which would be user defined). – Eljay yesterday
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    It's also confusing that the delete operator destroys the object and then calls operator delete. Ergo, the delete operator and operator delete are separate things :( stackoverflow.com/a/8918942/845092 – Mooing Duck 11 hours ago
  • Not sure why you cite the delete-functions when talking about the delete-operator. But whatever. – Deduplicator 1 hour ago
41
0

Operators of custom types can be overloaded to do the most weirdest things.

for example the + operator returns the result of the addition.

Not necessarily:

#include <iostream>
struct foo {
    void operator+(int x) {
        std::cout << x;
    }
};

int main () {
    foo f;
    f + 3;
}

Running this code prints 3. foo::operator+ does not return anything. This code probably won't pass a code review, but not returning something from an operator is not unusual.

The only operator that can be overloaded that has the requirement of returning something I am aware of is operator->. It must either return a raw pointer or an object that has an operator->.

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  • Funnily enough, there is actually no constraint on overloaded operators return value. So, operators can return whatever you want. en.cppreference.com/w/cpp/language/operators – bracco23 23 hours ago
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    @braccor23 operator-> is a bit special and needs to return either a pointer or an object which has an operator->, not sure if there are other exceptions – idclev 463035818 23 hours ago
  • Yes, that's the only constraint. Not even bool for comparison operators. That looks really weird. – bracco23 23 hours ago
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    @idclev463035818: A perhaps more useful example can be Expression Templates. For example, you can make a matrix library where operator*(Matrix const& left, Matrix const& right) returns not Matrix but instead MatrixMul, so that if it is then fed into operator+(Matrix const& left, MatrixMul const& right) the operation can be a fused multiply-add which is more efficient than first multiplying then adding. – Matthieu M. 22 hours ago
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    @DarrelHoffman When << and >> are overloaded for I/O operations, they're expected to return the stream so that you can cascade them: stream << foo << bar; – Barmar 19 hours ago
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To nitpick, operators don't return anything. They are just lexical elements that we use to create expressions in the the language. Now, expressions have types and may evaluate to values, and I assume this is what you mean by operators "returning things".

And, well, yes. There are C++ expressions with type void (and consequentially don't evaluate to any value). Some are obvious, others less so. A nice example would be

throw std::runtime_error()

throw is an expression under the C++ grammar. You can use it in other expressions, for instance in the conditional expression

return goodStatus() ? getValue() : throw std::runtime_error();

And the type of a throw expression, is void. Obviously since this just causes execution to rapidly go elsewhere, the expression has no value.

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9
0

None of the built-in C++ operators return something. Overloaded C++ operators return something insofar that the operator notation is a syntactic sugar for a function call.

Rather, operators all evaluate to something. That something has a well-defined value as well as a type. Even the function call operator void operator()(/*params*/) is a void type.

For example, +'a' is an int type with the value of 'a' encoded on your platform.

If your question is "Can C++ operators have a void type?" then the answer is most certainly yes.

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    @idclev463035818: It's the term return I have an issue with. The only thing in C++ that returns something is a function. Expressions evaluate to something. – Bathsheba yesterday
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    operators of class types are methods that return something – idclev 463035818 yesterday
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    This is an important point. Sloppy terminology leads to confusion. +1. – Pete Becker yesterday
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    @supercat — your comment maligns a bunch of hardworking people, including me. Those of us who wrote the standard never expected compiler writers to fill in details by polling other compilers, present or past. The goal of the standard was and is to clearly define the syntax and semantics of the C++ programming language. Yes, the result isn’t perfect; there are many issues addressed in the latest standard that weren’t addressed in earlier versions. That comes from experience, recognizing complications that simply weren’t seen at the time. – Pete Becker yesterday
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    @Peter-ReinstateMonica — here’s a stronger version. The expression I++ does not return a value. If the type of i is a user-defined type, that expression is implemented as operator++, which is a function that returns a value. You call that “syntactic sugar”; I call that a distinction that has important consequences. – Pete Becker 22 hours ago
5
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You can actually define a function call operator to return nothing. For example:

struct Task {
   void operator()() const;
};
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    You can define almost any operator to return nothing (and face the wrath of angry mob that will have to maintain that code) – Yksisarvinen yesterday
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    @Yksisarvinen but at least this one is potentially useful. – Mark Ransom 11 hours ago
5
0

operator void(): user defined conversion function to void

You may define the peculiar operator void() conversion function, where the compiler will even warn you that the T to void conversion function will never be used:

#include <iostream>

struct Foo {
    operator void() { std::cout << "Foo::operator void()!"; }
    // warning: conversion function converting 'Foo' to 
    //          'void' will never be used
};
    
int main() {
    Foo f;
    (void)f;            // nothing
    f.operator void();  // Foo::operator void()!
}

as governed by [class.conv.fct]/1

[...] A conversion function is never used to convert a (possibly cv-qualified) object to the (possibly cv-qualified) same object type (or a reference to it), to a (possibly cv-qualified) base class of that type (or a reference to it), or to (possibly cv-qualified) void.117

(117) These conversions are considered as standard conversions for the purposes of overload resolution ([over.best.ics], [over.ics.ref]) and therefore initialization ([dcl.init]) and explicit casts. A conversion to void does not invoke any conversion function ([expr.static.cast]). Even though never directly called to perform a conversion, such conversion functions can be declared and can potentially be reached through a call to a virtual conversion function in a base class.

Whilst, however, as is shown above, you can still invoke it using the explicit .operator void() syntax.

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