Difference between revisions of "2021 USAMO Problems/Problem 6"
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==Solution== | ==Solution== | ||
− | [[File:2021 USAMO 6b.png| | + | [[File:2021 USAMO 6b.png|350px|right]] |
[[File:2021 USAMO 6c.png|300px|right]] | [[File:2021 USAMO 6c.png|300px|right]] | ||
− | We construct two equal triangles, prove that triangle <math>XYZ</math> is the medial triangle of both this triangles | + | [[File:2021 USAMO 6a.png|300px|right]] |
+ | We construct two equal triangles, prove that triangle <math>XYZ</math> is the same as medial triangle of both this triangles. We use property of medial triangle and prove that circumcenters of constructed triangles coincide with given circumcenters. | ||
Denote <math>A' = C + E – D, B' = D + F – E, C' = A+ E – F,</math> | Denote <math>A' = C + E – D, B' = D + F – E, C' = A+ E – F,</math> | ||
<math>D' = F+ B – A, E' = A + C – B, F' = B+ D – C.</math> | <math>D' = F+ B – A, E' = A + C – B, F' = B+ D – C.</math> | ||
Then <math>A' – D' = C + E – D – ( F+ B – A) = (A + C + E ) – (B+ D + F).</math> | Then <math>A' – D' = C + E – D – ( F+ B – A) = (A + C + E ) – (B+ D + F).</math> | ||
+ | |||
Denote <math>D' – A' = 2\vec V.</math> | Denote <math>D' – A' = 2\vec V.</math> | ||
Symilarly we get <math>B' – E' = F' – C' = D' – A' \implies</math> | Symilarly we get <math>B' – E' = F' – C' = D' – A' \implies</math> | ||
− | <math>\triangle | + | <math>\triangle A'C'E' = \triangle D'F'B'.</math> |
+ | |||
+ | The translation vector maps <math>\triangle A'C'E'</math> into <math>\triangle D'F'B'</math> is <math>2\vec {V.}</math> | ||
<math>X = \frac {A+D}{2} = \frac { (A+ E – F) + (D + F – E)}{2} = \frac {C' + B'}{2} = \frac {E' + F'}{2},</math> | <math>X = \frac {A+D}{2} = \frac { (A+ E – F) + (D + F – E)}{2} = \frac {C' + B'}{2} = \frac {E' + F'}{2},</math> | ||
so <math>X</math> is midpoint of <math>AD, B'C',</math> and <math>E'F'.</math> Symilarly <math>Y</math> is the midpoint of <math>BE, A'F',</math> and <math>C'D', Z</math> is the midpoint of <math>CF, A'B',</math> and <math>D'E'.</math> | so <math>X</math> is midpoint of <math>AD, B'C',</math> and <math>E'F'.</math> Symilarly <math>Y</math> is the midpoint of <math>BE, A'F',</math> and <math>C'D', Z</math> is the midpoint of <math>CF, A'B',</math> and <math>D'E'.</math> | ||
<math>Z + V = \frac {A' + B'}{2}+ \frac {D' – A'}{2} = \frac {B' + D'}{2} = Z'</math> is the midpoint of <math>B'D'.</math> | <math>Z + V = \frac {A' + B'}{2}+ \frac {D' – A'}{2} = \frac {B' + D'}{2} = Z'</math> is the midpoint of <math>B'D'.</math> | ||
− | Symilarly <math>X' = X + V</math> is the midpoint of <math>B'F',Y'= Y + V</math> is the midpoint of <math>D'F' | + | |
− | It is known (see diagram) that circumcenter of triangle | + | Symilarly <math>X' = X + V</math> is the midpoint of <math>B'F',Y'= Y + V</math> is the midpoint of <math>D'F'.</math> |
+ | |||
+ | Therefore <math>\triangle X'Y'Z'</math> is the medial triangle of <math>\triangle B'D'F'.</math> | ||
+ | |||
+ | <math>\triangle XYZ</math> is <math>\triangle X'Y'Z'</math> translated on <math>– \vec {V}.</math> | ||
+ | |||
+ | It is known (see diagram) that circumcenter of triangle coincide with orthocenter of the medial triangle. Therefore orthocenter <math>H</math> of <math>\triangle XYZ</math> is circumcenter of <math>\triangle B'D'F'</math> translated on <math>– \vec {V}.</math> It is the midpoint of segment <math>OO'</math> connected circumcenters of <math>\triangle B'D'F'</math> and <math>\triangle A'C'E'.</math> | ||
According to the definition of points <math>A', C', E', ABCE', CDEA',</math> and <math>AFEC'</math> are parallelograms <math>\implies</math> | According to the definition of points <math>A', C', E', ABCE', CDEA',</math> and <math>AFEC'</math> are parallelograms <math>\implies</math> | ||
<cmath>AC' = FE, AE' = BC, CE' = AB, CA' = DE, EA' = CD, EC' = AF \implies</cmath> | <cmath>AC' = FE, AE' = BC, CE' = AB, CA' = DE, EA' = CD, EC' = AF \implies</cmath> | ||
<cmath>AC' \cdot AE' = CE' \cdot CA' = EA' \cdot EC' \implies</cmath> Power of points A,C, and E with respect circumcircle \triangle A'C'E' is equal, hence distances between these points and circumcenter of \triangle A'C'E' are the same \implies circumcenters of constructed triangles coincide with given circumcenters. | <cmath>AC' \cdot AE' = CE' \cdot CA' = EA' \cdot EC' \implies</cmath> Power of points A,C, and E with respect circumcircle \triangle A'C'E' is equal, hence distances between these points and circumcenter of \triangle A'C'E' are the same \implies circumcenters of constructed triangles coincide with given circumcenters. |
Revision as of 07:57, 15 September 2022
Problem 6
Let be a convex hexagon satisfying , , , andLet , , and be the midpoints of , , and . Prove that the circumcenter of , the circumcenter of , and the orthocenter of are collinear.
Solution
We construct two equal triangles, prove that triangle is the same as medial triangle of both this triangles. We use property of medial triangle and prove that circumcenters of constructed triangles coincide with given circumcenters.
Denote Then
Denote
Symilarly we get
The translation vector maps into is
so is midpoint of and Symilarly is the midpoint of and is the midpoint of and is the midpoint of
Symilarly is the midpoint of is the midpoint of
Therefore is the medial triangle of
is translated on
It is known (see diagram) that circumcenter of triangle coincide with orthocenter of the medial triangle. Therefore orthocenter of is circumcenter of translated on It is the midpoint of segment connected circumcenters of and
According to the definition of points and are parallelograms Power of points A,C, and E with respect circumcircle \triangle A'C'E' is equal, hence distances between these points and circumcenter of \triangle A'C'E' are the same \implies circumcenters of constructed triangles coincide with given circumcenters.