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For a physics engine I'm building, I need to quickly determine if two rigid bodies were in contact, at the previous frame. I want it to be as fast as possible, so maybe you guys could provide some ideas?

This is what I've got so far. (And it works okay, but the whole thing got me wondering how I could improve it.)

    // I thought using a struct would be a good idea with only two values?
    struct Contact 
    {
        public readonly PhyRigidBody Body1;
        public readonly PhyRigidBody Body2;

        public Contact(PhyRigidBody body1, PhyRigidBody body2)
        {
            Body1 = body1;
            Body2 = body2;
        }
    }

    class ContactComparer : IEqualityComparer<Contact>
    {
        public bool Equals(Contact x, Contact y)
        {
            // It just have to be the two same bodies, nevermind the order.
            return (x.Body1 == y.Body1 && x.Body2 == y.Body2) || (x.Body1 == y.Body2 && x.Body2 == y.Body1);
        }

        public int GetHashCode(Contact obj)
        {
            // There has got to be a better way than this?
            return RuntimeHelpers.GetHashCode(obj.Body1) + RuntimeHelpers.GetHashCode(obj.Body2);
        }
    }

    // Hold all contacts in one big HashSet.
    private HashSet<Contact> _contactGraph = new HashSet<Contact>(new ContactComparer());



    // To query for contacts I do this
    Contact contactKey = new Contact(body1, body2);
    bool prevFrameContact = _contactGraph.Remove(contactKey);
    // ... and then I re-insert it later, if there is still contact.
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2 Answers 2

up vote 1 down vote accepted

You could instead use a Dictionary<PhyRigidBody, HashSet<PhyRigidBody>> that maps a given body to a set of other bodies it was in contact with (that means you keep each "contact" twice, as each body is included in the contact-set of the other). That would avoid the Contact struct altogether, along with the somewhat-fishy Equals method. I'm not sure it's an improvement, but it's worth considering.

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what about extracting an extension or class-level method, "Contact" for PhyRigidBody - i.e bool contacted = somePhyRigidBody.Contact(anotherObject). Better yet, if you later wanted to implement non-rigid physics, you should think about making the Contact() method part of an interface, allowing you to easily extend your library. –  Josh E Jun 12 '09 at 18:45
    
I think you're mixing two different concerns here: how to determine contact should indeed go somewhere where it can be overridden (like an interface, etc.). But the guy is asking about how to store the contact data for the previous frame, supposedly after calculating it. –  Avish Jun 12 '09 at 19:08
    
Thanks for the ideas. Think I'll add a "HashSet<PhyRigidBody> contacts" to each PhyRigidBody. Still need to keep the contacts twice, unless I simply check both bodies when querying for contacts. –  LaZe Jun 13 '09 at 5:17

I'm confused by this:

// It just have to be the two same bodies, nevermind the order.
return (x.Body1 == y.Body1 && x.Body2 == y.Body2) || (x.Body1 == y.Body2 && x.Body2 == y.Body1);

but overall I don't get the point. How many bodies are there? Do the bodies move so their contact-ness changes often? Could you just drop them into a spatial grid? How often do you need to know what the contac-tions are?

Without knowing more about the problem it's hard to say much, though my gut feeling is that getting all wrapped up in hash codes and data structure is going to cost you big-time.

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At each frame, I must be able to determine if two bodies were touching at the previous frame. I need that information for many pairs of bodies, at each frame. There might be a lot of bodies in the scene (thousands), but then a large part of them is probably static or sleeping. I need to be able to query for prev-frame contacts on any two bodies. –  LaZe Jun 13 '09 at 17:40
    
Basically it's a sparse boolean matrix. You could have a 1-d array indexed by body1, each item containing a list of body2 numbers. That's basically a hash setup. On the other hand if your query sequence is highly predictable or sequential, you could take advantage of that. –  Mike Dunlavey Jun 14 '09 at 15:58

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