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2009-03-31, 16:55
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#23 | |
"Richard B. Woods"
Aug 2002
Wisconsin USA
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2009-04-06, 00:25
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#24 | |
"Lucan"
Dec 2006
England
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In order: Nice pic, but not sure what it adds, apart from 1/2 being midway between 0 and 1. As for elegance, I'm sure that William will testify that after sussing the two hints I provided, the rest is somewhat tedious and error prone. Glad you got fun talking about it with with your daughter. The only credit I would like to claim is in spotting a neat problem in "Physicsforums" the day before. That said, I have received a PM from someone who guessed (correctly) that I taught him under the nickname of Doc Eddy preumably prior to 1987, on the strength of my username and the problem bearing my trademark. This might sound like one of those junk Emails that inform you that every girl within twenty miles of Milton Keynes wants sex with you, but I would like to think otherwise. There are a couple of obvious extensions to the puzzle: What if you extend outwards? If you are worried about the logistics of nesting triangles of the same resistance per unit length ad infinitum, you could always keep the resistivitiy constant and allow the diameter of the wire to decrease by half each time. David Last fiddled with by davieddy on 2009-04-06 at 00:42 |
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2009-04-08, 23:49
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#25 | ||
Feb 2007
1B016 Posts |
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PS: also agree with contfrac([0,[1,1,4,1]]). |
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2009-04-09, 16:31
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#26 | |
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"Lucan"
Dec 2006
England
2·3·13·83 Posts |
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I know enough (but no more) about crystallography to know that extending patterns to 3D is non-trivial. Ditto the 17 patterns of 2D wallpaper. Not unrelated is the exercise of deriving the moment of inertia of a triangle or rectangle using only the fact that it goes as length^4 and the || axis theorem. Last fiddled with by davieddy on 2009-04-09 at 16:34 |
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2009-04-11, 14:22
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#27 | |
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"Lucan"
Dec 2006
England
11001010010102 Posts |
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You may be thinking of diamond. |
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2009-04-11, 22:29
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#28 | |
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Feb 2007
24·33 Posts |
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Specifically, I *was* thinking of a tedrahedron, but in my mind I had +1'd all dimensions, so wires became faces... Now there may be another possibility, keeping wires, but then the resulting object may be more complicated.... anyway, 'twas just (the beginning of) an idea... |
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2009-04-24, 11:30
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#29 | |
Nov 2003
22·5·373 Posts |
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Suppose every edge of a hypercube is a resistor with r=1. What is the total resistance between opposite corners. |
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2009-04-24, 15:09
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#30 |
Dec 2005
22·72 Posts |
Start with small dimension (n=3, n=4)
For n=3 we get a resistance of 1/3 + 1/6 + 1/3 = 5/6 For n=4 we get a resistance of 1/4 + 1/12 + 1/12 + 1/4= 2/3 For n=5 we get 1/5 + 1/20 + 1/30 + 1/20+1/5= 8/15 |
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2009-04-25, 08:18
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#31 | |
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"Lucan"
Dec 2006
England
11001010010102 Posts |
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as a warning not to touch the problem with a barge pole. However, after a bit of thought (high time I tried that again), I find I've intuitively made some progress. Excuse lack of spoilers, and playing fast and loose with math terminology. The vertices of the hypercube are n dimensional vectors with each component +/- 1. Each vertex is joined by an edge (resistor) to all others whose vectors differ in the sign of one and only one component. So each vertex has n edges, none of which are connected to vertices with the same number of minus signs. If we take the "opposite corners" to be the vertices with all + and all - components, then I guess all vertices with the same number of minuses will be at the same potential, and none of them connected to each other. The number of vertices with r minus signs is nCr. Each of these vertices has n connections to vertices with r+1 or r-1 minus signs. What we want to find is "how many resistors between r and r+1?". Enough for now David Last fiddled with by davieddy on 2009-04-25 at 08:26 |
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2009-04-25, 19:17
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#32 |
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"Lucan"
Dec 2006
England
2·3·13·83 Posts |
If x(r) resistors join vertices with r minuses to those
with r+1 minuses, we have: x(0) = n x(r) = n*nCr - x(r-1) I assume someone is up to getting an expression for x(r) from this. The resistance between opposite corners is the sum of 1/x(r) from r=0 to r=n-1. |
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2009-04-27, 15:49
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#33 |
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Dec 2005
22×72 Posts |
http://arxiv.org/abs/0904.1757
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