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I'm doing (something like) this:

void insert(Node*& node, string val, Node* parent)
{
   if (node == NULL)
     instantiateNode(node, val, parent);
   else
     insert(node->child, val, node);
}

The thing is, that instantiateNode(..., parent) seems to modify the original *&node passed into the function when setting the *parent. instantiateNode() is supposed to alter the node, but if it alters the parent than you have a node that is set to its parent, which doesn't make sense, and also doesn't work. At all.

The reason I'm bothering with pointer references at all is because it eliminates special cases and significantly reduces the amount of error checking I have to do. Since I'm doing it to reduce line count and trivial algorithm-ish duplication, I can get around this by approximately doubling the code line count. But I'd rather not, and I feel like there should be a way to dereference a pointer reference to get a new pointer that points to the same object. And, really, I thought that pass of *&node through *parent should have done it, but apparently gcc is optimizing it out.

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2  
Can you post your full code and what it is that you are trying to achieve? This looks like a fairly straightforward insertion, why are you even dealing with pointer references? –  Uri Oct 7 '09 at 23:02
    
Your question sounds unclear. Why not post instantiateNode? That it should modify the node pointer (and the whole thing should also be able to modify parent) seems rather expectable to me. –  UncleBens Oct 7 '09 at 23:04
    
It's not clear (to me at least) what change of behaviour of that code snippet you are looking for. I would assume that the whole point of passing node as a reference would be that it can be modified from inside the function. Also the function name instantiateNode seems to suggest that it would create a new node, probably by modifying it's parameter. And about copying a pointer, do you mean Node *copy = node;? –  sth Oct 7 '09 at 23:05
2  
"apparently gcc is optimizing that out" -> no it's not. Don't blame the compiler/optimizer. It's almost never wrong, and GCC is wrong even less often than most. Your code is doing what you told it to do, which may or may not be what you intended. –  rmeador Oct 7 '09 at 23:13
1  
I should have added to my previous comment that the optimizer is not allowed to change how your program behaves. Only in the weirdest of circumstances (undefined behavior, optimizer bugs, and a few things in the spec like assignment/copy constructor elision) will it do so. –  rmeador Oct 7 '09 at 23:15

3 Answers 3

up vote 3 down vote accepted

there should be a way to dereference a pointer reference to get a new pointer that points to the same object.

Well, how about this?

Node* n = node;

Now you've got a non-reference pointer that points to the same object as node, exactly what you asked for.

I am 95% sure the problem you are facing has nothing to do with references, and everything to do with faulty logic in instantiateNode or your use of it. That's why it would be useful if you gave us more information about what the code is supposed to do, or even posted the code to instantiateNode.

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You're absolutely right. I think I let myself get caught up in details, but I tried that, early on, and gdb suggests that it is still pointing to the wrong thing. But even doing Node* n = &(*node); doesn't fix it, so either I'm just out of luck or, more likely, I'm doing something stupid. It's a small function, though, and I've written tons very similar to it, and I've re-written it I don't even know how many times, and etc, and so I still am unsure about what is going on. If I figure it out, I'll be back. –  quodlibetor Oct 8 '09 at 5:17

node is a reference to a pointer, which means that if the function sets node, the value passed in is changed. That's how references work.

If you don't want node to change in the calling function, don't make it a reference.

Or have I misunderstood something?

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No, you're right: I want node to change. But then I think that when I pass it to insert() as parent (which is not a reference) it should be copied and parent should be a new pointer that points to the same place as node did in the previous function. –  quodlibetor Oct 8 '09 at 1:46
    
But you're not passing parent into insert(). –  Graeme Perrow Oct 8 '09 at 2:19
    
node becomes the parent, because insert() operates on the child of the node. The signature: insert(node, item, parent). The call: insert(node->child, item, node) –  quodlibetor Oct 8 '09 at 2:51
    
Sorry, I somehow missed that you are calling insert recursively. Yes, the second time insert is called, the parent variable in that frame should be the same as the node variable in the caller's frame. You can change the thing that parent points to (i.e. the contents of the Node structure), but you can't change parent itself. –  Graeme Perrow Oct 8 '09 at 10:56

I don't think node needs to be passed by reference. A simple pointer should do the job. This is because you don't ever need to change it directly. Why are you passing it to instantiateNode()? It will always be NULL, so what good does it do? If instantiateNode() also has its first argument passed as a reference, why? You are passing in the parent, so instantiateNode() can just access the thing node should represent via parent->child. Even if for some reason instantiateNode() does take it's param by reference and it's required to do so, I believe the function will still work if you drop the reference from insert()'s first argument. Whatever instantiateNode() does with that value will simply be lost when the function returns. I'm sorry that's so confusing, but I can't think of a better way to word it.

There's another interpretation of your problem... maybe your call to insert() should read:

insert(node, val, node->child);
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The code just appears to build a list, it just appends to the lasts nodes child, i.e. where child==0. Supposing thats what it should do it looks fine to me. –  Georg Fritzsche Oct 8 '09 at 1:32
    
What happens is that I pass it in, and if it's NULL, I set it to a new child. So I'm actually affecting the pointer itself. It could be done with minor acrobatics by doing a whole lot of condition checking, though. The only reason I'm doing it like this is because it's a 3-5 tree, and I don't want to have to check 3-5 things on every loop. –  quodlibetor Oct 8 '09 at 2:04

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