Difference between revisions of "2016 USAJMO Problems/Problem 1"

Revision as of 23:32, 16 April 2019

Problem

The isosceles triangle $\triangle ABC$ , with $AB=AC$ , is inscribed in the circle $\omega$ . Let $P$ be a variable point on the arc $\stackrel{\frown}{BC}$ that does not contain $A$ , and let $I_B$ and $I_C$ denote the incenters of triangles $\triangle ABP$ and $\triangle ACP$ , respectively.

Prove that as $P$ varies, the circumcircle of triangle $\triangle PI_BI_C$ passes through a fixed point.

Solution 1

$[asy] size(8cm); pair A = dir(90); pair B = dir(-10); pair C = dir(190); pair P = dir(-70); pair U = incenter(A,B,P); pair V = incenter(A,C,P); pair M = dir(-90); draw(circle((0,0),1)); dot("$A$", A, dir(A)); dot("$B$", B, dir(B)); dot("$C$", C, dir(C)); dot("$P$", P, dir(P)); dot("$I_B$", U, NE); dot("$I_C$", V, NW); dot("$M$", M, dir(M)); draw(A--B--C--A); draw(circumcircle(P,U,V)); [/asy]$

We claim that $M$ (midpoint of arc $BC$ ) is the fixed point. We would like to show that $M$ , $P$ , $I_B$ , $I_C$ are cyclic.

We extend $PI_B$ to intersect $\omega$ again at R. We extend $PI_C$ to intersect $\omega$ again at S.

We invert around a circle centered at $P$ with radius $1$ (for convenience). (I will denote X' as the reflection of X for all the points) The problem then becomes: Prove $I_B'$ , $I_C'$ , and $M'$ are collinear.

Now we look at triangle $\triangle PR'S'$ . We apply Menelaus (the version where all three points lie outside the triangle). It suffices to show that $\dfrac{PI_B'}{I_B'R'} \cdot \dfrac{R'M'}{M'S'} \cdot \dfrac{S'I_C'}{I_C'P} = 1$

By inversion, we know $PX' = \dfrac{1}{PX}$ for any point $X$ and $X'Y' = \dfrac{XY}{PX \cdot PY}$ for any points $X$ and $Y$ .

Plugging this into our Menelaus equation we obtain that it suffices to show $\dfrac{\dfrac{1}{PI_B}}{\dfrac{RI_B}{PI_B \cdot PR}} \cdot \dfrac{\dfrac{RM}{PR \cdot PM}}{\dfrac{SM}{PS \cdot PM}} \cdot \dfrac{\dfrac{SI_C}{PI_C \cdot PS}}{\dfrac{1}{PI_C}} = 1$ We cancel out the like terms and rewrite. It suffices to show $\dfrac{RM \cdot SI_C}{SM \cdot RI_B} = 1$ We know that $AM$ is the diameter of $\omega$ because $\triangle ABC$ is isosceles and $AM$ is the angle bisector. We also know $\angle RMA = \dfrac{\angle ACB}{2} = \dfrac{\angle ABC}{2} = \angle SMA$ so $R$ and $S$ are symmetric with respect to $AM$ so $RM = SM$ .

Thus, it suffices to show $\dfrac{SI_C}{RI_B} = 1$ . This is obvious because $RI_B = RA = SA = SI_C$ . Therefore we are done. $\blacksquare$

Solution 2

We will use complex numbers as mentioned here. Set the circumcircle of $\triangle ABC$ to be the unit circle. Let $A=1, B=w^2,C=\frac{1}{w^2}, P=p^2,$ such that $I_B=w+wp-p, I_C=p-\frac{p}{w}+\frac{1}{w}.$ We claim that the circumcircle of $\triangle PI_BI_C$ passes through $M=-1.$ This is true if $k=\frac{(I_B-M)(I_C-P)}{(I_B-P)(I_C-M)}=\frac{(w+wp-p+1)(p+\frac{1}{w}-\frac{p}{w}-p^2)}{(w+wp-p-p^2)(p+\frac{1}{w}-\frac{p}{w}+1)}=\frac{(wp+1)(1-p)}{(p+1)(w-p)}$ is real. Now observe that $\overline{k}=\frac{(1+\frac{1}{wp})(1-\frac{1}{p})}{(\frac{1}{p}+1)(\frac{1}{w}-\frac{1}{p})}=k,$ so $k$ is real and we are done. $\blacksquare$

Solution 3

$[asy] size(8cm); pair A = dir(90); pair B = dir(-10); pair C = dir(190); pair P = dir(-70); pair U = incenter(A,B,P); pair V = incenter(A,C,P); pair M = dir(-90); pair D = dir(40); pair E = dir(140); draw(circle((0,0),1)); dot("$A$", A, dir(A)); dot("$B$", B, dir(B)); dot("$C$", C, dir(C)); dot("$D$", D, dir(D)); dot("$E$", E, dir(E)); dot("$P$", P, dir(P)); dot("$I_B$", U, NE); dot("$I_C$", V, NW); dot("$M$", M, dir(M)); draw(A--B--C--A--P--B ^^ P--C ^^ E--D--P--E--M--V ^^ D--M--U--V); [/asy]$

Let $M$ be the midpoint of arc $BC$ . Let $D$ be the midpoint of arc $AB$ . Let $E$ be the midpoint of arc $AC$ . Then $P I_B D$ collinear. And $P I_C E$ collinear.

We'll prove $MPI_B I_C$ is cyclic. (Intuition: we'll show that $M$ is the Miquel's point of quadrilateral $DE I_C I_B$ .

$D$ is the center of the circle $A I_B B$ (the $P-$ excenter of $PAB$ is also on the same circle). Therefore $D I_B = DB$ . Similarly $E I_C = EC$ . Since $AB=AC$ , $DB=EC$ . Therefore $D I_B = E I_C$ . Obviously $ME = MD$ and $\angle MEI_C = \angle MEP = \angle MDP = \angle MDI_B$ . Thus by SAS, $\triangle MEI_C \cong \triangle MEI_B$ . (Should that say $\triangle MEI_c \cong \triangle MDI_B$ instead??)

Hence $\angle I_B P I_C = \angle DME = \angle DPE = \angle I_B P I_C$ , so $MPI_B I_C$ is cyclic and we are done.(Please elaborate on this and how it implies that $MPI_B I_C$ is cyclic.)

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

@@ Line 97: / Line 97: @@
 <math>D</math> is the center of the circle <math>A I_B B</math> (the <math>P-</math> excenter of <math>PAB</math> is also on the same circle). Therefore <math>D I_B = DB</math>. Similarly <math>E I_C = EC</math>. Since <math>AB=AC</math>, <math>DB=EC</math>. Therefore <math>D I_B = E I_C</math>. Obviously <math>ME = MD</math> and <math>\angle MEI_C = \angle MEP = \angle MDP = \angle MDI_B</math>. Thus by SAS, <math>\triangle MEI_C \cong \triangle MEI_B</math>. (Should that say <math>\triangle MEI_c \cong \triangle MDI_B</math> instead??)
-Hence <math>\angle I_B P I_C = \angle DME = \angle DPE = \angle I_B P I_C</math>, so <math>MPI_B I_C</math> is cyclic and we are done.
+Hence <math>\angle I_B P I_C = \angle DME = \angle DPE = \angle I_B P I_C</math>, so <math>MPI_B I_C</math> is cyclic and we are done.(Please elaborate on this and how it implies that <math>MPI_B I_C</math> is cyclic.)
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2016 USAJMO (Problems • Resources)
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