1

Consider this code:

struct S { int m; };

S trick() { S s; return s; } 

void bar(S s) { /* observe s.m */ }

void foo()
{
    S s;           // s.m is indeterminate
    S* p = new S;  // p->m is indeterminate
    bar(S());      // bar() will observe S::m to be 0
    bar(trick());  // bar() will observe S::m to be indeterminate
}

Is it possible to construct a temporary variable of type S without resorting to tricks?

Why do I need this?

As I understand "default initialization" is conceptually the cheapest way to construct an object. Ability to construct a temporary in such way can be useful to ignore data you don't need with as little of overhead as possible:

struct S { int m; };

void foo(S* pOut);   // 3rd party function that insists on returning some data

template<class T> T* tmp_addr(T&& v) { return &v; }  // careful with this one...

foo( tmp_addr(trick()) ); // receive and discard data without zeroing out memory
5
  • Leaving uninitialized is cheaper than default initialization. – Ayxan Haqverdili Jul 22 '20 at 13:11
  • @Ayxan Default initialisation is the only way to leave something uninitialised. Unless by "leaving uninitialised", you mean not create an object in the first place. – eerorika Jul 22 '20 at 13:12
  • 1
    @eerorika I mean the difference between S s{}; and S s;. – Ayxan Haqverdili Jul 22 '20 at 13:14
  • @Axyan Former is value initialisation. Latter is default initialisation. – eerorika Jul 22 '20 at 13:15
  • Surely you mean /* assign s.m */, as in the case of foo? Observing it (other than as bytes) would be undefined even if trick() were not already so. – Davis Herring Jul 23 '20 at 2:04
3

You can default initialize a sub-object of a temporary variable.

template<typename T>
class default_init_tmp final {
  T t;
  public:
  default_init_tmp () /*Intentionally left blank*/ {}
  default_init_tmp (default_init_tmp const&) = delete;
  void operator=(default_init_tmp const&) = delete;
  T* operator&() { return &t; }
};

Granted, usually it's ill-advised to overload operator&, but it somehow seems appropriate here, given the general nature of the exercise. You'd use it as follows

int main() 
{ 
    foo(&default_init_tmp<S>()); 
}
2
  • Smth like this maybe? With modern compilers it works fine in all cases except the one where function takes S by value. Hmm... note how MSVC struggles to optimize all this – C.M. Jul 23 '20 at 20:10
  • Hmm... I know on my compilers (gcc & msvc) NRVO works (and even if it doesn't -- copying indeterminate value is harmless). So, in light of msvc's inability to properly optimize all use cases -- trick() approach (even though it is more verbose) seem to be better... I wish language had a construct for default-initialized temporary :-/ – C.M. Jul 23 '20 at 20:34
2

How about:

#include <memory>

struct Foo 
{
  int i;
};

auto trick() { 
    return std::make_unique_for_overwrite <Foo>(); // C++20
    // return std::unique_ptr<Foo>(new Foo);       // pre C++20
}

void foo(Foo* f);

int main() 
{ 
    foo(trick().get()); 
}
10
  • you must be kidding... :) – C.M. Jul 22 '20 at 17:30
  • 1
    You would need to use make_unique_for_overwrite to get default initialisation ;) – eerorika Jul 22 '20 at 17:32
  • @C.M. I am not sure what the question is quite honestly. I thought you wanted to avoid naming the variable, and here you go. A temporary that you can take address of – Ayxan Haqverdili Jul 22 '20 at 17:40
  • You should read up on default-initialization :) – C.M. Jul 22 '20 at 18:56
  • @C.M. better now? – Ayxan Haqverdili Jul 22 '20 at 19:05
1

Is it possible to default-initialize a temporary variable?

I don't think so.

Also, the behaviour of your program is undefined, because it reads (copies) indeterminate values. A simple, and correct way to use foo without value initialisation is to not use a temporary:

S s;
foo(&s);
9
  • To my knowledge code in posting does not have UB. But this is beside the point -- point was to avoid using solution you proposed in favor of smth more compact (one-liner), with shorter lifetime (temporary) and without introducing a new name (hence, temporary). Plus, temporary plays better in situations like this: if (cnd1 && foo(...)) ... -- this code is more readable than if(cnd1) { S s; if (foo(&s)) ...; }. Add more conditions into this for more effect. – C.M. Jul 22 '20 at 14:02
  • 1
    @C.M. To my knowledge code in posting does not have UB. To my knowledge, your knowledge is wrong. temporary plays better Feel free to use a temporary if you want. My point is that a temporary cannot be default initialised, and that your attempted trick is UB. – eerorika Jul 22 '20 at 14:06
  • UB -- my position is "as long as we don't read S::m -- there is no UB". temporary cannot be default initialised -- it certainly can be (see trick() function in original post). I hoped there is a language construct that would allow me to achieve same thing (and wouldn't require S to be move-/copy-able). – C.M. Jul 22 '20 at 14:51
  • 2
    @C.M. "as long as we don't read S::m" You read the entire object when you return a copy of it. The object contains the indeterminate member. "It certainly can be" There is no temporary object in trick, so that is not an example of default initialising a temporary object. You default initialised a named variable. "I hoped there is a language construct that would allow me to achieve same thing (and wouldn't require S to be move-/copy-able)" My answer is that there isn't such language construct. But not requiring S to be move/copyable is achievable by not using a temporary. – eerorika Jul 22 '20 at 15:00
  • 1
    @C.M.: Since it’s unspecified whether the copy/move that would have undefined behavior occurs, the behavior is undefined—even if you check addresses of your objects to try to reassure yourself, you can’t prove that the answer isn’t fabricated by the UB. – Davis Herring Jul 23 '20 at 2:01

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