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I was reading this which mentions about dtors being trivial and non-trivial.

A class has a non-trivial destructor if it either has an explicitly defined destructor, or if it has a member object or a base class that has a non-trivial destructor.

In example, I have a class,

class C {
    public:
     ~C(); // not explicitly declared.
};

If C::~C() is implicitly defined does it make a trival dtor?

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3 Answers

up vote 6 down vote accepted

You are getting your words mixed up. Your example does indeed declare an explicit destructor. You just forget to define it, too, so you'll get a linker error.

The rule is very straight-forward: Does your class have an explicit destructor? If yes, you're non-trivial. If no, check each non-static member object; if any if them are non-trivial, then you're non-trivial.

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and as a side note: C::~C() { } is still a non-trivial destructor. Even if you do nothing, you are doing nothing. Trivial destructors/constructors are always created by the compiler for you. –  Cort Ammon Sep 6 '13 at 22:20
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@CortAmmon: To be more precise, it needs to be implicitly-defined. It's OK to be user-declared, if it is also defaulted (which must happen at the first declaration). –  Kerrek SB Sep 6 '13 at 22:22
    
Interesting I had to look that one up. I knew about = delete, but not = default –  Cort Ammon Sep 7 '13 at 0:05
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So you mean, the entire declaration of C is this:

class C { };

?

Then, yes: Since C has no member objects and no base classes, it therefore has no member objects with non-trivial destructors and no base classes with non-trivial destructors, so its implicitly-defined destructor is a trivial one.

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I think in general it refers to a destructor that actually does something such as:

  • Release memory
  • Close a connection to database
  • Or take care of any resource that needs to be released

In this case the destructor does nothing. According to the description, technically it may be 'non-trivial' because it defines a constructor, but it matters not, since it does nothing anyway.

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It's more a destructor that may do something. If the destructor is defined in a different translation unit from code that uses the class (C.cpp vs. main.cpp or whatnot), then when the compiler is compiling main.cpp, it has to assume that it needs to call C's destructor whenever an automatically-stored instance of C goes out of scope, because it has no way of knowing that that destructor doesn't actually do anything. –  ruakh Nov 19 '11 at 1:04
    
"In this case the destructor does nothing." How do you know? The definition of the dtor is not given. –  curiousguy Nov 19 '11 at 7:20
    
excellent thxg, for a stl learning –  kaitian Sep 2 '12 at 13:21
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