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There are functions

SomeType foo(){
  SomeType temporaryVariable;
  // do something
  return temporaryVariable;
}

void bar(SomeType& arg){
  // action
}

Why I need explicitly copy the return value and only then pass it as an argument to the bar function?

auto copyOfReturnValue = foo();
bar(copyOfReturnValue);

What prevents C++ from the following construction?

bar(foo());
share|improve this question
    
Temporaries don't bind to references to non-const. You need an lvalue or take the parameter by reference to const. – jrok Apr 20 '14 at 21:01
2  
The reason you can't pass temporaries to bar is because, if it were allowed, it would let you say bar(5) and then possibly change the object inside the function. Now, it doesn't make sense to change 5 to be something else, does it? Therefore, the language rules say that temporaries can only bind to references to const. So if you write bar(const SomeType& arg), it will compile and work. – jrok Apr 20 '14 at 21:20
    
@jrok you should add your comment as an answer. – R Sahu Apr 20 '14 at 22:27

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