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I have the following struct:

struct Node 
{
    double linkCost[8];
    int val;
    Node *prevNode;
}
nodeBuf = new Node();

I can access Node.val by doing:

nodeBuf->val

but linkCost doesn't work that way. What should I be doing instead?

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linkCost doesn't work that way. Please example. nodeBuf->linkCost[0] = 0 is perfectly correct. –  ForEveR Sep 1 '12 at 21:53
    
This code won’t compile. Please post the real code. Furthermore, your question isn’t clear but that is probably a consequence of the incomplete code. –  Konrad Rudolph Sep 1 '12 at 21:53
    
linkCost does work that way. It sounds like you're doing something illegal with nodeBuf->linkCost, but you'll need to show us. –  Drew Dormann Sep 1 '12 at 22:02
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2 Answers 2

up vote 2 down vote accepted
struct Node 
{
    double linkCost[8];
    int val;
    Node *prevNode;
}

try to declare it like that for better alignment :

struct Node 
{

    int val;
    Node *prevNode;
   double linkCost[8];
}


nodeBuf = new Node();
nodeBuf->linkcost[i] = 3.14; //set the i element. to pi
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Is that alignment good for 64 bit? sizeof(int) is 4 bytes on my x86_64 here (GCC 4.7, Linux), so the pointer will still not be aligned to 8 bytes. –  Stefan Majewsky Sep 1 '12 at 22:24
    
If you're trying to avoid padding, you definitely want the Node* before the int. Rule of thumb is to list the members in decreasing order of alignment requirement. Of course that's implementation-dependent, but you're unlikely to hit an implementation on which int is more aligned than a pointer. –  Steve Jessop Sep 2 '12 at 1:46
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nodeBuf->linkCost[index] = value
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