-3

If I have the class Rectangle

Class rectangle{
    //attribute
    ....

    //methods
    ...
    void getInfo() const;
}

And main

int main(){
    vector<Rectangle> v;
    for (vector<Rectangle>::const_iterator it = v.begin() ; it != v.end(); ++it){
        it->getInfo();
    }
}

why

"it->getInfo();" 

returns me right value about all vector contents and

"*it->getInfo();"

return me an error?

i learned that iterators are like pointer.. and for take its content you should deference it..

  • -> is a dereference operator – M.M Sep 24 '18 at 7:41
4

why

"it->getInfo();"

returns me right value about all vector contents

it is an iterator. An iterator can be dereferenced to access the item it refers to, and both operator* and operator-> are acceptable ways to dereference an iterator. it->getInfo() is the same as (*it).getInfo().

and

"*it->getInfo();"

return me an error?

operator-> has a higher precedence than operator*, so the expression above is evaluated as if it had been written as *(it->getInfo()), which fails since getInfo() does not return a type that can be dereferenced with operator*.

Even if the compiler evaluated it the other way, (*it)->getInfo() would also fail since rectangle does not have an overloaded operator->.

i learned that iterators are like pointer..

LIKE pointers, but not guaranteed to BE pointers. All pointers are iterators, but not all iterators are pointers.

2
it->getInfo();

is correct because; iterator and -> is dereferencing it.

*it->getInfo(); incorrect

(*it).getINfo();

in Short, -> is a shortcut to (*it).getINfo(); in term of writing and it is better to read.

  • 1
    "iterator is a pointer" - not always. But iterators are designed to imitate pointers, so many pointer operations can also be applied to iterators – Remy Lebeau Sep 24 '18 at 7:56
0

There are two ways to dereference a pointer, one is by *, and one by ->, where the latter must be followed by a data member or member function associated with the static type of the pointee. Example:

void doStuff(const Rectangle&); 

Rectangle rect{/* ... */};
Rectangle *pointer = &rect;

doStuff(*pointer); // dereference the pointer

const double width = pointer->width(); // dereference and use a width() member function

The same applies to iterators, where these operators are overloaded. In your case,

it->getInfo();
//^^ dereference the iterator

does the dereferencing by operator ->, while *it->getInfo() tries to dereference the return type of getInfo(), which is void. By the way, getInfo() for a member function returning void is a confusing name, you might to overthink that. And let me plug a second suggestion here: the loop can be simplified by range based for loop like this:

for (const Rectangle& rect : v) {
    rect.getInfo();
}

Note that the loop variable rect is a const-qualfied reference, and not an iterator anymore - hence, no need to dereference anything.

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