Difference between revisions of "2007 USAMO Problems/Problem 2"

Revision as of 14:39, 21 March 2012

Problem

A square grid on the Euclidean plane consists of all points $(m,n)$ , where $m$ and $n$ are integers. Is it possible to cover all grid points by an infinite family of discs with non-overlapping interiors if each disc in the family has radius at least 5?

Solution

Solution 1

Lemma

Among 3 tangent circles with radius greater than or equal to 5, one can always fit a circle with radius greater than $\frac{1}{\sqrt{2}}$ between those 3 circles.

Proof

Descartes' Circle Theorem states that if a is the curvature of a circle ( $a=\frac 1{r}$ , positive for externally tangent, negative for internally tangent), then we have that

$(a+b+c+d)^2=2(a^2+b^2+c^2+d^2)$

Solving for a, we get

$a=b+c+d+2 \sqrt{bc+cd+db}$

Take the positive root, as the negative root corresponds to internally tangent circle.

Now clearly, we have $b+c+d \le \frac 35$ , and $bc+cd+db\le \frac 3{25}$ . Summing/square root/multiplying appropriately shows that $a \le \frac{3 + 2 \sqrt{3}}5$ . Incidently, $\frac{3 + 2\sqrt{3}}5 < \sqrt{2}$ , so $a< \sqrt{2}$ , $r > \frac 1{\sqrt{2}}$ , as desired.

For sake of contradiction, assume that we have a satisfactory placement of circles. Consider 3 circles, $p,\ q,\ r$ where there are no circles in between. By Appolonius' problem, there exists a circle $t$ tangent to $p,\ q,\ r$ externally that is between those 3 circles. Clearly, if we move $p,\ q,\ r$ together, $t$ must decrease in radius. Hence it is sufficient to consider 3 tangent circles. By lemma 1, there is always a circle of radius greater than $\frac{1}{\sqrt{2}}$ that lies between $p,\ q,\ r$ . However, any circle with $r>\frac 1{\sqrt{2}}$ must contain a lattice point. (Consider placing an unit square parallel to the gridlines in the circle.) That is a contradiction. Hence no such tiling exists.

@@ Line 22: / Line 22: @@
 Summing/[[square root]]/multiplying appropriately shows that <math>a \le \frac{3 + 2 \sqrt{3}}5</math>. Incidently, <math>\frac{3 + 2\sqrt{3}}5 < \sqrt{2}</math>, so <math>a< \sqrt{2}</math>, <math>r > \frac 1{\sqrt{2}}</math>, as desired.
-===Solution 2===
 For sake of [[contradiction]], assume that we have a satisfactory placement of circles. Consider 3 circles, <math>p,\ q,\ r</math> where there are no circles in between. By [[Appolonius' problem]], there exists a circle <math>t</math> tangent to <math>p,\ q,\ r</math> externally that is between those 3 circles. Clearly, if we move <math>p,\ q,\ r</math> together, <math>t</math> must decrease in radius. Hence it is sufficient to consider 3 tangent circles. By lemma 1, there is always a circle of radius greater than <math>\frac{1}{\sqrt{2}}</math> that lies between <math>p,\ q,\ r</math>. However, any circle with <math>r>\frac 1{\sqrt{2}}</math> must contain a [[lattice point]]. (Consider placing an unit square parallel to the gridlines in the circle.) That is a contradiction. Hence no such tiling exists.

2007 USAMO (Problems • Resources)
Preceded by Problem 1	Followed by Problem 3
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