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The following question was asked in a recent microsoft interview.

What is the difference between the two declarations?

int p=*(int*)i; 
int p=*(int*)&i; 

I think in the first one i is a pointer and in the second one i is a variable.
Is there anything else?

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13  
Any sufficiently advanced diff program will tell you it's an ampersand on the 14th column. –  R. Martinho Fernandes Jul 5 '12 at 18:13
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How is i declared? If it's an int, then &i is already of type int*, and the cast in the second line is superfluous. –  Keith Thompson Jul 5 '12 at 18:15
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it kind of depends on the type of i. –  Kevin Jul 5 '12 at 18:16
    
The question makes virtually no sense whatsoever without knowing what i is. As stated, it has only one answer: the one Martinho gave you in the comment above. –  AndreyT Jul 5 '12 at 18:25
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2 Answers

up vote 9 down vote accepted

The first is taking the value contained in i, treating it as a pointer, and retrieving whatever int value is at that address (if possible).

The second takes the address of i, casts it to pointer to int, and retrieves the value at that address. If i is an int, it's equivalent to p=i;. If it's not, it's going to take the first CHAR_BIT *sizeof(int) bits starting at the address of i, and (attempt to) treat them as an int, and assign whatever value that creates to p.

Edit: and yes, as @R. Martinho Fernandes pointed out, if i has an overloaded operator &, it may do something rather different from any of the above (i.e., instead of the address of i it'll start with whatever its operator & returns).

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Unless the type of i is evil, i.e., has an overloaded operator&! :P –  R. Martinho Fernandes Jul 5 '12 at 18:18
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Formally, of course, if i isn't int, the second results in undefined behavior. It could crash, if i has less strict alignment requirements than int, and it could crash if i was smaller than int, and just happened to be at the very end of mapped memory. –  James Kanze Jul 5 '12 at 18:22
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If you know the language then this question boils down to what is the difference betweeen

i

and

&i

And the answer is that in the first case it's i and in the second case it's address of i, and then you have all those conversions to act on either of these two.

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