Difference between revisions of "2020 CAMO Problems/Problem 3"

Latest revision as of 05:48, 29 September 2025

Problem 3

Let $ABC$ be a triangle with incircle $\omega$ , and let $\omega$ touch $\overline{BC}$ , $\overline{CA}$ , $\overline{AB}$ at $D$ , $E$ , $F$ , respectively. Point $M$ is the midpoint of $\overline{EF}$ , and $T$ is the point on $\omega$ such that $\overline{DT}$ is a diameter. Line $MT$ meets the line through $A$ parallel to $\overline{BC}$ at $P$ and $\omega$ again at $Q$ . Lines $DF$ and $DE$ intersect line $AP$ at $X$ and $Y$ respectively. Prove that the circumcircles of $\triangle APQ$ and $\triangle DXY$ are tangent.

Solution

Let $R$ be the intersection of $AT$ with $\omega$ other than $T$ .

Claim 1: $R$ is the $D$ -queue point of $DXY$ . In particular, $R$ lies on $(DXY)$ . Proof: First, we claim that $X$ and $Y$ lie on $TE$ and $TF$ respectively. Let $X_0=TE\cap DF$ and $Y_0=TF\cap DE$ . By Brokard, $X_0Y_0$ is the polar of $EF\cap DT$ which is the line through $A$ parallel to $BC$ , so it coincides with the line $XY$ which gives $X\equiv X_0$ and $Y\equiv Y_0$ . The fact that $\measuredangle TED = \measuredangle TFD = 90^{\circ}$ is enough to imply that $T$ is the orthocenter. Now, \begin{align*} (X, Y; A, \infty_{XY}) &\overset{T}{=} (E, F; R, T) \\ &= -1 \end{align*} so $A$ is the midpoint of $XY$ , which gives the claim.

Denote $f_1$ as the inversion centered at $T$ swapping $(DXY)$ with its nine-point circle $(AEF)$ , and denote $f_2$ as the inversion centered at $A$ fixing $\omega$ .

Claim 2: $R$ lies on $(APQ)$ . Proof: Note that $f_1(Q)=P$ which follows from the fact that $f_1(\omega)=XY$ , so we are done with this claim by Power of a Point Theorem.

Finally, we return to prove that $R$ is the tangency point of $(DXY)$ and $(APQ)$ . Inverting at $f_1$ and $f_2$ in that order, it suffices to show that $f_2(f_1(DXY))=EF$ and $f_2(f_1(DXY))=H'T$ are parallel, where $H'$ is defined to be the intersection of $AQ$ and $\omega$ other than $Q$ .

But note that $(Q, H'; E, F)=-1$ and $Q$ is the $D$ -queue point of $DEF$ , so it is well known that $H'$ is the point on $\omega$ such that $DH'\perp EF$ . The parallelism then follows from here. ~ alexanderchew

@@ Line 32: / Line 32: @@
 But note that <math>(Q, H'; E, F)=-1</math> and <math>Q</math> is the <math>D</math>-queue point of <math>DEF</math>, so it is well known that <math>H'</math> is the point on <math>\omega</math> such that <math>DH'\perp EF</math>. The parallelism then follows from here.
+~ alexanderchew
 ==See also==

2020 CAMO (Problems • Resources)
Preceded by Problem 2	Followed by Problem 4
1 • 2 • 3 • 4 • 5 • 6
All CAMO Problems and Solutions

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Difference between revisions of "2020 CAMO Problems/Problem 3"

Latest revision as of 05:48, 29 September 2025

Problem 3

Solution

See also