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Difference between revisions of "Mock AIME 3 Pre 2005 Problems/Problem 11"

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==Solution 2==
 
==Solution 2==
  
\documentclass{article}
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Notice that <cmath>\angle{BCF} = \angle{DAF} = \frac{\overarc{DF}}{2}</cmath> and <cmath>\angle{EBC} = \angle{EBD} = \angle{EAD} =\frac{\overarc{DE}}{2}</cmath>
\usepackage{fourier}
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Hence, <math>\angle{BAD} = \angle{CAD}</math>. Furthermore, through cyclic quadrilaterals, we can find that <math>\triangle{BFD} \sim \triangle {BCA}</math> and <math>\triangle{ECD} \sim \triangle{BCA}</math>.
\begin{document}
 
  
 
 
Notice that <math>\angle{BCF} = \angle{DAF} = \frac{\widearc{DF}}{2}</math> and <math>\angle{EBC} = \angle{EBD} = \angle{EAD} =\frac{\widearc{DE}}{2}</math>. Hence, <math>\angle{BAD} = \angle{CAD}</math>. Furthermore, through cyclic quadrilaterals, we can find that <math>\triangle{BFD} \sim \triangle {BCA}</math> and <math>\triangle{ECD} \sim \triangle{BCA}</math>.
 
 
\end{document}
 
  
 
==See Also==
 
==See Also==
 
{{Mock AIME box|year=Pre 2005|n=3|num-b=10|num-a=12}}
 
{{Mock AIME box|year=Pre 2005|n=3|num-b=10|num-a=12}}

Latest revision as of 00:27, 6 December 2024

Problem

$ABC$ is an acute triangle with perimeter $60$. $D$ is a point on $\overline{BC}$. The circumcircles of triangles $ABD$ and $ADC$ intersect $\overline{AC}$ and $\overline{AB}$ at $E$ and $F$ respectively such that $DE = 8$ and $DF = 7$. If $\angle{EBC} \cong \angle{BCF}$, then the value of $\frac{AE}{AF}$ can be expressed as $\frac{m}{n}$, where $m$ and $n$ are relatively prime positive integers. Compute $m + n$.

Solution

Remark that since $ABDE$ is cyclic we have $\angle CED=\angle DBF$, and similarly $\angle BFD=\angle DCE$. Therefore by AA similarity $\triangle DBF\sim\triangle DEC$. Thus there exists a spiral similarity sending $B$ to $E$ and $F$ to $D$, so by a fundamental theorem of spiral similarity $\triangle BDE\sim\triangle FDC$. The angle equality condition gives $\angle CFD=\angle EBD=\angle DCF$, so $\triangle CDF$ is isosceles and $DC=7$. Similarly, $BD=8$. Finally, note that the congruent side lengths actually imply $\triangle DBF=\triangle DEC$, so $EC=BF$.

Let $x=CE=BF$ and $b=AC$. Remark that from the perimeter condition $AB=45-b$. Now from Power of a Point we have the system of two equations \[\begin{cases}7\cdot 15&=xb,\\8\cdot 15&=x(45-b).\end{cases}\] Expanding the second equation and rearranging variables gives $45x=8\cdot 15+bx=15^2\implies x=5$. Back-substitution yields $AC=21$ and consequently $AB=24$. Thus $AE=16$ and $AF=19$, so the desired ratio is $\tfrac{16}{19}\implies\boxed{035}$.

Solution 2

Notice that \[\angle{BCF} = \angle{DAF} = \frac{\overarc{DF}}{2}\] and \[\angle{EBC} = \angle{EBD} = \angle{EAD} =\frac{\overarc{DE}}{2}\] Hence, $\angle{BAD} = \angle{CAD}$. Furthermore, through cyclic quadrilaterals, we can find that $\triangle{BFD} \sim \triangle {BCA}$ and $\triangle{ECD} \sim \triangle{BCA}$.


See Also

Mock AIME 3 Pre 2005 (Problems, Source)
Preceded by
Problem 10 		Followed by
Problem 12
1 2 3 4 5 6 7 8 9 10 11 12 13 14 15
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