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suppose I have this vector

vector<Object> m;

and then I have the following assignments:

vector<Object> o = m;
vector<Object> k = &m;

vector o will be a COPY of vector m whereas vector k will point to the exact same object as vector m....am I right?

in other words, if I go, o.push_back(something), this will modify vector o but not vector m whereas if I go k.push_back(something), this will indeed modify vector m.

am I wrong or right?

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Try compiling the code before posting it. –  nbt Apr 24 '11 at 20:00

3 Answers 3

up vote 6 down vote accepted

Right for o, wrong for k.

vector<Object> k = &m;
//                 ^^ -- you're taking the address of m here

To make a reference, use

vector<Object>& k = m;
//            ^ -- this makes a reference
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Yes, that's conceptually right - except you missed an asterisk or perhaps used an ampersand too much in your sample.

vector<Object> o = m;
vector<Object>* k = &m; // use address-of (&) to create a pointer (*) to m

Pointers always carry this * with them.

Now, m.push_back(...) and k->push_back(...) modify exactly the same object. Note the use of ->, which is used to access a member of a pointer.

If you want to create a reference, you don't use the & - think of it being done implicitly by the compiler:

vector<Object>& k = m; // no address-of here, but k is a reference to m

now, k.push_back() can be used to access m.

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"Now, o.push_back(...) and k->push_back(...) modify exactly the same object." -- sorry, but this is wrong. o is a copy, so it's a distinct object. I think you meant m both times? –  Xeo Apr 24 '11 at 19:25
    
I did, thanks for pointing me to it. –  Alexander Gessler Apr 24 '11 at 19:29
    
Jep, now it's correct. :) +1 for a more lengthy explanation. And whoever downvoted, please explain, it's corrected now. –  Xeo Apr 24 '11 at 19:35
    
I'm not the downvoter, but it appears to me that the OP was asking about references, not pointers, so maybe that's why. –  ildjarn Apr 24 '11 at 19:39
    
you're right - at a first glance it appeared to me as if he'd intended to create a pointer due to his use of &, and later realized that the outspoken intend must have been to create a reference. Still leaving the response here as it nonetheless answers the question and might be of use to the OP. –  Alexander Gessler Apr 24 '11 at 19:42

This code will not even compile. The type of the expression &m is vector<Object>*, which cannot be assigned to the variable k (its type is vector<Object>).

Possibly you meant to do this:

vector<Object> o = m;
vector<Object>& k = m;

in which case o will be a copy of m (resulting in o and m having copies of the same elements, therefore modifying the contents of one will not affect the contents of the other) and both m and k will refer to the same instance (therefore any change on the instance using one of the two variables will be immediately visible when you refer to the vector using the other variable).

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