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#define START ((void (**)(int)) 0x0fff)

*START = &fun_foo();

I haven't seen this before. What is happening here? Is void (**)(int) a function pointer?

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2 Answers 2

up vote 3 down vote accepted

void (**)(int) is a pointer to a pointer to a function that takes an int and returns nothing.

So START is apointer to a function pointer, and *START is the actual function pointer which is set to point to fun_foo.

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In your case, START is a pointer (located at the fixed address 0x0fff) to a function pointer.

But as I suggested in this answer, for readability reasons, you may want to use a typedef for the signature of that pointed function.

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