Difference between revisions of "1972 USAMO Problems/Problem 5"

Line 12: Line 12:
  
 
==Solution==
 
==Solution==
{{solution}}
+
{{image}}
 +
 
 +
Let <math>A'B'C'D'E'</math> be the inner pentagon, labeled so that <math>A</math> and <math>A'</math> are opposite each other, and let <math>a, b, c, d, e</math> be the side lengths of the inner pentagon labeled opposite their corresponding vertices. The equal area condition implies that <math>\overline{BE}\parallel\overline{CD}</math> (and cyclic), so pentagon <math>A'B'C'D'E'</math> is similar to pentagon <math>ABCDE</math> with <math>AB = m(A'B')</math> and parallelogram <math>ABCB'</math> (and cyclic) has area 2. Supposing
 +
<cmath>\begin{align*}
 +
P &= [ABCDE] \\
 +
Q &= [A'B'C'D'E'] \\
 +
R &= \sum_{\text{cyc}}[AC'D'] \\
 +
S &= \sum_{\text{cyc}}[ABD'],
 +
\end{align*}</cmath>
 +
we have
 +
<cmath>\begin{align*}
 +
\sum_{\text{cyc}}[ABCB'] &= 5Q + 3R + 2S \\
 +
10 &= 3Q + R + 2P.
 +
\end{align*}</cmath>
 +
Since <math>BCDC'</math> and <math>CDED'</math> are parallelograms, <math>BC' = ED' = (m - 1)a</math>. Triangle <math>EB'C'</math> is similar to triangle <math>ECB</math>, so <math>me = BC = \left(\frac{2m - 1}{m - 1}\right)e</math>, and with the requirement that <math>m > 1</math>,
 +
<cmath>m = \frac{2m - 1}{m - 1}\Rightarrow m = \frac{3 + \sqrt{5}}{2}.</cmath>
 +
Now, we compute that <math>[AC'D'] = \frac{1}{2m - 1} = \sqrt{5} - 2</math>, and similar computation for the other four triangles gives <math>R = 5\sqrt{5} - 10</math>. From the aforementioned pentagon similarity, <math>Q = P/m^2 = \left(\frac{7 - 3\sqrt{5}}{2}\right)P</math>. Solving for <math>P</math>, we have
 +
<cmath>\begin{align*}
 +
10 &= 3\left(\frac{7 - 3\sqrt{5}}{2}\right)P + (5\sqrt{5} - 10) + 2P \\
 +
20 - 5\sqrt{5} &= \left(\frac{25 - 9\sqrt{5}}{2}\right)P \\
 +
P &= \frac{40 - 10\sqrt{5}}{25 - 9\sqrt{5}} \\
 +
&= \frac{5 + \sqrt{5}}{2}.
 +
\end{align*}</cmath>
 +
 
 +
To show that there are infinitely many pentagons with the given property, we start with triangle <math>A'B'C'</math> and construct the original pentagon using the required length ratios. This triangle has three continuous degrees of freedom, and the condition that the equal areas be specifically unity means that there are two continuous degrees of freedom in which the configuration can vary, which implies the desired result.
  
 
==See Also==
 
==See Also==

Revision as of 23:35, 31 March 2014

Problem

A given convex pentagon $ABCDE$ has the property that the area of each of the five triangles $ABC$, $BCD$, $CDE$, $DEA$, and $EAB$ is unity. Show that all pentagons with the above property have the same area, and calculate that area. Show, furthermore, that there are infinitely many non-congruent pentagons having the above area property.

[asy] size(80); defaultpen(fontsize(7)); pair A=(0,7), B=(5,4), C=(3,0), D=(-3,0), E=(-5,4), P; P=extension(B,D,C,E); draw(D--E--A--B--C--D--B--E--C); label("A",A,(0,1));label("B",B,(1,0));label("C",C,(1,-1));label("D",D,(-1,-1));label("E",E,(-1,0));label("P",P,(0,1)); [/asy]

Solution


An image is supposed to go here. You can help us out by creating one and editing it in. Thanks.


Let $A'B'C'D'E'$ be the inner pentagon, labeled so that $A$ and $A'$ are opposite each other, and let $a, b, c, d, e$ be the side lengths of the inner pentagon labeled opposite their corresponding vertices. The equal area condition implies that $\overline{BE}\parallel\overline{CD}$ (and cyclic), so pentagon $A'B'C'D'E'$ is similar to pentagon $ABCDE$ with $AB = m(A'B')$ and parallelogram $ABCB'$ (and cyclic) has area 2. Supposing \begin{align*} P &= [ABCDE] \\ Q &= [A'B'C'D'E'] \\ R &= \sum_{\text{cyc}}[AC'D'] \\ S &= \sum_{\text{cyc}}[ABD'], \end{align*} we have \begin{align*} \sum_{\text{cyc}}[ABCB'] &= 5Q + 3R + 2S \\ 10 &= 3Q + R + 2P. \end{align*} Since $BCDC'$ and $CDED'$ are parallelograms, $BC' = ED' = (m - 1)a$. Triangle $EB'C'$ is similar to triangle $ECB$, so $me = BC = \left(\frac{2m - 1}{m - 1}\right)e$, and with the requirement that $m > 1$, \[m = \frac{2m - 1}{m - 1}\Rightarrow m = \frac{3 + \sqrt{5}}{2}.\] Now, we compute that $[AC'D'] = \frac{1}{2m - 1} = \sqrt{5} - 2$, and similar computation for the other four triangles gives $R = 5\sqrt{5} - 10$. From the aforementioned pentagon similarity, $Q = P/m^2 = \left(\frac{7 - 3\sqrt{5}}{2}\right)P$. Solving for $P$, we have \begin{align*} 10 &= 3\left(\frac{7 - 3\sqrt{5}}{2}\right)P + (5\sqrt{5} - 10) + 2P \\ 20 - 5\sqrt{5} &= \left(\frac{25 - 9\sqrt{5}}{2}\right)P \\ P &= \frac{40 - 10\sqrt{5}}{25 - 9\sqrt{5}} \\ &= \frac{5 + \sqrt{5}}{2}. \end{align*}

To show that there are infinitely many pentagons with the given property, we start with triangle $A'B'C'$ and construct the original pentagon using the required length ratios. This triangle has three continuous degrees of freedom, and the condition that the equal areas be specifically unity means that there are two continuous degrees of freedom in which the configuration can vary, which implies the desired result.

See Also

1972 USAMO (ProblemsResources)
Preceded by
Problem 4
Followed by
Last Question
1 2 3 4 5
All USAMO Problems and Solutions

The problems on this page are copyrighted by the Mathematical Association of America's American Mathematics Competitions. AMC logo.png