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In the Communications of the ACM, August 2008 "Puzzled" column, Peter Winkler asked the following question:

On the table before us are 10 dots, and in our pocket are 10 $1 coins. Prove the coins can be placed on the table (no two overlapping) in such a way that all dots are covered. Figure 2 shows a valid placement of the coins for this particular set of dots; they are transparent so we can see them. The three coins at the bottom are not needed.

In the following issue, he presented his proof:

We had to show that any 10 dots on a table can be covered by non-overlapping $1 coins, in a problem devised by Naoki Inaba and sent to me by his friend, Hirokazu Iwasawa, both puzzle mavens in Japan.

The key is to note that packing disks arranged in a honeycomb pattern cover more than 90% of the plane. But how do we know they do? A disk of radius one fits inside a regular hexagon made up of six equilateral triangles of altitude one. Since each such triangle has area sqrt(3)/3, the hexagon itself has area 2*sqrt(3); since the hexagons tile the plane in a honeycomb pattern, the disks, each with area π, cover π /(2*sqrt(3)) ~ .9069 of the plane's surface.

It follows that if the disks are placed randomly on the plane, the probability that any particular point is covered is .9069. Therefore, if we randomly place lots of $1 coins (borrowed) on the table in a hexagonal pattern, on average, 9.069 of our 10 points will be covered, meaning at least some of the time all 10 will be covered. (We need at most only 10 coins so give back the rest.)

What does it mean that the disks cover 90.69% of the infinite plane? The easiest way to answer is to say, perhaps, that the percentage of any large square covered by the disks approaches this value as the square expands. What is "random" about the placement of the disks? One way to think it through is to fix any packing and any disk within it, then pick a point uniformly at random from the honeycomb hexagon containing the disk and move the disk so its center is at the chosen point.

I don't understand. Doesn't the probabilistic nature of this proof simply mean that in the majority of configurations, all 10 dots can be covered. Can't we still come up with a configuration involving 10 (or less) dots where one of the dots can't be covered?

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closed as off topic by e.James, ShreevatsaR, Marc Gravell Oct 14 '10 at 11:01

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This is a fascinating question, but unfortunately I think it is off-topic. It would be perfect for math.stackexchange.com –  e.James Oct 13 '10 at 14:16
    
I agree with the move to the math site. If you do move it, please let us know the url to the question. :) –  David Norman Oct 13 '10 at 17:52
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I took the liberty of posting this on the math site: math.stackexchange.com/questions/6737 –  e.James Oct 14 '10 at 3:43
    
@e.James: thanks. moving it is a good idea, I'm just a bit lazy. –  Ken Bloom Oct 14 '10 at 3:45
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Three good answers have already been posted at math.stackexchange.com (if I say so myself); I'm voting to close. –  ShreevatsaR Oct 14 '10 at 4:15

1 Answer 1

up vote 5 down vote accepted

I think that I can re-arrange Winkler's argument to make it a little more convincing.

You're given an arrangement of dots on a table. You also have a big template made of coins glued together in a honeycomb pattern. You now do a Monte Carlo simulation, repeatedly throwing the honeycomb on the table at a random location (but always with the same orientation), and counting the number of covered dots. If you get enough samples you will eventually find that the expected average number of dots covered is 9.069 per throw.

The key insight is that if the average is 9.069, there must have been a throw where 10 dots were covered. Because if you never covered 10 dots, the average would be 9 or less.

So now you know that there was at least one throw that covered 10 dots. You duplicate that throw, and remove all the coins that aren't covering a dot. There will be 10 or fewer coins remaining.

A small digression: Is it possible that for some clever arrangement of dots the long range average of covered dots is something other than 9.069? The answer is no, because each of the dots can be considered separately. In other words, in 10000 throws of the honeycomb, the expected number each dot will be covered is 9069 times. So we expect a total of 90690 dots to be covered, for an average of 9.069 per throw.

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I don't think this works. The 9.069 is the expected number of dots covered across all throws and across all possible arrangements of dots. For any given arrangement of dots, the probability might be different. To see the that the probably for a fixed arrangement of dots can change, note that if there are just two dots and they are arbitrarily close together, then the probability of coverage approaches one. –  David Norman Oct 13 '10 at 17:51
    
For the proof to work, you would need to show that there is no set of dots where the probability of coverage is less than or equal to 9. –  David Norman Oct 13 '10 at 17:52
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@David, I assume you read my "small digression". I wrote it because originally I thought, as you, that the probability might depend on the arrangement. Say, as you suggested, that there are two dots that are arbitrarily close together. Then, if you randomly throw down a honeycomb, the probability of coverage is 0.9069, not 1. That's because there is probabilty 0.0931 that the dots are in the empty region between coins and hexagon borders. –  brainjam Oct 13 '10 at 18:37
    
@brainjam, Yes, I agree that my example is wrong, but I think the point still stands. In particular, I believe the argument in your digression assumes that for any set of dots {Pi} i >= 2, the probability that a throw covers P1 is independent of the probability of covering P2. This is what you need to go from a probability for a single dot to a probability for all dots. This seems unlikely, again because of two dots close to one another. –  David Norman Oct 13 '10 at 22:48
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The magic words missing here (and in Winkler's proof) are "linearity of expectation". This is what we use to prove that because the probability of each point being covered is 0.9069, the expected number of points covered is 9.069, even though they're not independent. –  ShreevatsaR Oct 14 '10 at 4:17

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