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What is the purpose of the throw statement in the following code?

struct MyException : public exception
{
  const char * what () const throw ()
  {
    return "C++ Exception";
  }
}; 
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1  
It's Goodenough's legacy. –  Hot Licks Aug 2 '13 at 17:23

1 Answer 1

up vote 3 down vote accepted

It tells the compiler (and the reader) that this function will never exit via an exception. More importantly, in this case, it tells the compiler and the reader that all overloads of this function must fulfill the same condition. (In this case, it is probably present because the function what is declared this way in std::exception.)

EDIT:

This is called an exception specification, and since C++11, comes in two forms: throw() and noexcept. And the form throw() also allows specifying type names in the parentheses, in which case, you guarantee not to throw anything incompatible with those types. (In the C++11 grammar, the throw() form is referred to as a dynamic exception specification.)

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It might also be worth mentioning that it's called a (dynamic) exception specification. –  Mike Seymour Aug 2 '13 at 17:36
    
Done, and I mention noexcept as well. –  James Kanze Aug 2 '13 at 18:14

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