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Saw piece of code in book:

T& operator[](int i) throw(RangeError)
{
    if(i >= 0 && i < sz) return ptr[i];
    throw RangeError();
}

what does the throw(RangeError) mean? Behind a function declaration, I know we can append const, or =0 (for pure virtual), but I have never seen throw(...)

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I found exception-specification section after several pages in that book -_-# –  demaxSH Jun 20 '11 at 13:43

2 Answers 2

up vote 7 down vote accepted

It is an exception-specification. It means that your function tells everyone that it has a limited list of things it can throw. Unfortunately or not, but nothing prevents you actually throwing anything else from the function, but if something unexpected is thrown at runtime, then unexpected() will be called. Exception specifications have been removed in the new C++ standard.

void f() throw(); //I promise not to throw anything
void g() throw(A, B, C); // I promise not to throw anything except for A, B, or C

Unlike const-qualifiers, an exception specification is not part of a function's type.

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1  
Note: By default unexpected() causes the application to terminate with extreme prejudice. –  Loki Astari Jun 20 '11 at 13:36

It is an exception specification. It tells the compiler that the function may only throw expections of the type RangeError or subtypes thereof.

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