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Please excuse the simple question, but I'm having trouble understanding pointers to collections.

Imagine that I have this vector of bytes:

vector<uint8_t> n;

I want to store this in a shared pointer. Why do I need the address-of (&) operator?

shared_ptr<vector<uint8_t>> m(&n);

I would think that the constructor would take n. But I also think that I have a deep misconception about what is going on here :)

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The argument to the constructor is supposed to be a pointer. – Brian Feb 25 '14 at 2:03
I don't want to be that guy but...I think you meant miscomprehension. Unless you're genuinely scared :p (I'll remove this comment very shortly) – keyser Feb 25 '14 at 2:04
mis·ap·pre·hen·sion : false impression, a false impression or incorrect understanding, especially of the nature of a situation or somebody's intentions. (I changed it to miscomprehension anyway though, as I'm not great with English). – Justin R. Feb 25 '14 at 2:16

1 Answer 1

up vote 5 down vote accepted

I want to store this in a shared pointer.

No you don't. A shared pointer is for managing a dynamic object that needs to be deleted; this vector wasn't created with new, so can't be managed by a (normal) shared pointer. The pointer would attempt to delete it, causing mayhem.

You want to create the vector dynamically so that shared_ptr can manage it correctly:

auto m = make_shared<vector<uint8_t>>();    

Why do I need the address-of (&) operator?

Because shared pointers are (usually) used to manage objects created with new, and new gives a pointer; so shared_ptr has a constructor taking a pointer argument. However, it's usually better to use the make_shared function demonstrated above, rather than messing around with new yourself.

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"usually"? Is there a legitimate use for shared_ptr with objects not allocated with new? – imreal Feb 25 '14 at 2:21
@Nick: Yes, if you provide a deleter that does something other than delete. – Mike Seymour Feb 25 '14 at 2:22

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