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Is it different from foo.bar calling a function from a specific instance? I've seen it around on tutorials but it's never explained and it's too general a term to show up on google.

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    What happened when you tried replacing one with the other?
    – Kerrek SB
    Commented Jun 4, 2015 at 19:25
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    foo.bar is invoking a method on an object, while foo->bar is de-referencing a pointer to an object, then invoking that method. Commented Jun 4, 2015 at 19:25

3 Answers 3

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Operator operator-> can only be used on a pointer type (in that case foo->bar is equivalent to (*ptr).bar) or a type that overloads operator-> (in that case the semantic depends on the overload itself).

An example with a pointer type might be:

struct some {
    int x;
};

some a{10};
some* a_ptr = &x;

a.x = 10;
a_ptr->x = 10;

An example for an overloaded type could be:

std::unique_ptr<some> a_ptr = std::make_unique<some>(10);
a_ptr->x = 10;
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0

foo->bar is short for (*foo).bar. (Unless foo is of some class type for which -> does something else).

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0

foo->bar is used when foo is pointing to a certain data type foo.bar is used when foo is an object of a class

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