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Why pure virtual function is initialized by 0?

Why pure virtual destructors in C++ always equate to zero

class Sample { public: virtual void fun() = 0;// Why pure virtual function //equated only to ZERO and not with //any other random value? };

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marked as duplicate by Greg Hewgill, Oliver Charlesworth, Steve Townsend, Jon Purdy, Paul R Mar 19 '12 at 19:03

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up vote 9 down vote accepted

The =0 is just syntax. It isn't literally storing a zero anywhere, it's just a way of communicating "pure virtual" to the parser.

This syntax was meant to avoid adding a new keyword to the language unnecessarily. Honestly, I think they would have been better off adding pure or abstract as keywords, but the C++ designers tend to shun new keywords if they can accomplish the same thing by reusing existing tokens.

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