Difference between revisions of "2018 IMO Problems/Problem 6"
(→Solution) |
(→Solution) |
||
Line 39: | Line 39: | ||
<i><b>Common case </b></i> | <i><b>Common case </b></i> | ||
− | Denote by <math>O</math> the intersection point of <math>BD</math> and the perpendicular bisector of <math>AC.</math> Let <math>\omega</math> be a circle (red) with center <math>O</math> and radius <math>OA.</math> | + | Denote by <math>O</math> the intersection point of <math>BD</math> and the perpendicular bisector of <math>AC.</math> Let <math>\omega</math> be a circle (red) with center <math>O</math> and radius <math>OA = OC = R.</math> |
The points <math>B</math> and <math>D</math> are symmetric with respect to the circle <math>\omega</math> <i><b>(Claim 1).</b></i> | The points <math>B</math> and <math>D</math> are symmetric with respect to the circle <math>\omega</math> <i><b>(Claim 1).</b></i> | ||
Line 57: | Line 57: | ||
The points <math>X</math> and <math>Y</math> are symmetric with respect to the circle <math>\omega</math>, since they lie on the intersection of the circles <math>ACF</math> and <math>ACE</math> symmetric with respect to <math>\omega</math> and the circle <math>BDF</math> orthogonal to <math>\omega.</math> | The points <math>X</math> and <math>Y</math> are symmetric with respect to the circle <math>\omega</math>, since they lie on the intersection of the circles <math>ACF</math> and <math>ACE</math> symmetric with respect to <math>\omega</math> and the circle <math>BDF</math> orthogonal to <math>\omega.</math> | ||
− | The | + | The point <math>X</math> is symmetric to <math>Y</math> with respect to <math>\omega \implies</math> |
− | Usung <math>(1) | + | <cmath>\frac{CX}{CY} = \frac {R^2}{OC \cdot OY} =\frac{R}{OY} , \frac {AX}{AY} = \frac {R^2}{OA \cdot OY} = \frac{R}{OY}.</cmath> |
− | The | + | Usung <math>(1)</math> we get <cmath>\frac{CY}{AY} = \frac {CX}{AX} = \frac{BC}{AD}.</cmath> |
+ | The point <math>B</math> is symmetric to <math>D</math> with respect to <math>\omega \implies</math> | ||
<cmath>\triangle OBC \sim \triangle OCD \implies \frac {OB}{OC} = \frac {BC}{CD} = \frac {OC}{OD},</cmath> | <cmath>\triangle OBC \sim \triangle OCD \implies \frac {OB}{OC} = \frac {BC}{CD} = \frac {OC}{OD},</cmath> | ||
<cmath>\frac {OB}{OD} = \frac {OB}{OC} \cdot \frac {OC}{OD} = \frac{BC^2}{CD^2} = \frac{BC}{CD} \cdot \frac {AB}{AD}.</cmath> | <cmath>\frac {OB}{OD} = \frac {OB}{OC} \cdot \frac {OC}{OD} = \frac{BC^2}{CD^2} = \frac{BC}{CD} \cdot \frac {AB}{AD}.</cmath> |
Revision as of 12:25, 23 August 2022
A convex quadrilateral satisfies Point lies inside so that and Prove that
Solution
We want to find the point Let and be the intersection points of and and and respectively. The poinx is inside so points follow in this order.
is cyclic lie on circle
Similarly, lie on circle
Point is the point of intersection of circles and
Special case
Let and
The points and are symmetric with respect to the circle (Claim 1).
The circle is orthogonal to the circle (Claim 2).
of of
(Claim 3)
Similarly,
Common case
Denote by the intersection point of and the perpendicular bisector of Let be a circle (red) with center and radius
The points and are symmetric with respect to the circle (Claim 1).
The circles and are orthogonal to the circle (Claim 2).
Circles and are symmetric with respect to the circle (Lemma).
Denote by the point of intersection of circles and
Quadrangle is cyclic
Quadrangle is cyclic
The triangles by two angles, so
The points and are symmetric with respect to the circle , since they lie on the intersection of the circles and symmetric with respect to and the circle orthogonal to
The point is symmetric to with respect to Usung we get The point is symmetric to with respect to The point is symmetric to and the point is symmetric to with respect to hence
Denote
By the law of sines for we obtain
By the law of sines for we obtain
Hence we get
If then This is a special case.
In all other cases, the equality of the sines follows
Claim 1 Let and be arbitrary points on a circle be the perpendicular bisector to the segment Then the straight lines and intersect at the points and symmetric with respect to
Claim 2 Let points and be symmetric with respect to the circle Then any circle passing through these points is orthogonal to
Claim 3 The sum of the arcs between the points of intersection of two perpendicular circles is In the figure they are a blue and red arcs
Lemma The opposite sides of the quadrilateral intersect at points and ( lies on ). The circle centered at the point contains the ends of the diagonal The points and are symmetric with respect to the circle (in other words, the inversion with respect to maps into Then the circles and are symmetric with respect to
Proof We will prove that the point symmetric to the point with respect to belongs to the circle For this, we will prove the equality
A circle containing points and symmetric with respect to is orthogonal to (Claim 2) and maps into itself under inversion with respect to the circle Hence, the point under this inversion passes to some point of the same circle
A straight line containing the point of the circle under inversion with respect to maps into the circle Hence, the inscribed angles of this circle are equal maps into and maps into Consequently, the angles These angles subtend the of the circle, that is, the point symmetric to the point with respect to belongs to the circle
vladimir.shelomovskii@gmail.com, vvsss