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This seems ambiguous to me:

*p1->p2
    *(p1->p2) or (*p1)->p2

*p1.a
    *(p1.a) or (*p1).a

How does the compiler interpret such expressions?

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4  
Using Operator Precedence. – Mateen Ulhaq Jun 5 '11 at 23:07
up vote 12 down vote accepted

It's all down to operator precedence. Both -> and . have higher precedence than * (in this context), so the two expressions are equivalent to:

*(p1->p2)
*(p1.a)
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The arrow (->) and dot (.) has higher precedence than the dereference operator (*) so it would be parsed as:

*(p1->p2)
*(p1.a)
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1) p1 is pointer to struct that contains p2, and p2 is pointer to something that you de-reference. *(p1->p2) 2) p1 is variable (not pointer) to struct that contains a, a is pointer that you de-reference. *(p1.a)

for more see C Operator Precedence and Associativity

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