Difference between revisions of "2011 AIME II Problems/Problem 13"
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<math>\angle{DPC}=\angle{CPB}</math> by symmetry, and <math>\angle{APB}=\angle{DP’C}</math> because translation preserves angles. Thus <math>\angle{DP’C}+\angle{CPD}=\angle{CPB}+\angle{APB}=180^\circ</math>. Therefore, quadrilateral <math>CPDP’</math> is cyclic. Thus the image of <math>O_1</math> coincides with <math>O_2</math>. | <math>\angle{DPC}=\angle{CPB}</math> by symmetry, and <math>\angle{APB}=\angle{DP’C}</math> because translation preserves angles. Thus <math>\angle{DP’C}+\angle{CPD}=\angle{CPB}+\angle{APB}=180^\circ</math>. Therefore, quadrilateral <math>CPDP’</math> is cyclic. Thus the image of <math>O_1</math> coincides with <math>O_2</math>. | ||
− | <math>O_1P</math> is parallel to <math>O_2P’</math> so <math>\angle{P’O_2P}=\angle{O_1PO_2}=120^\circ</math>, so <math>\angle{PDP’}=60^\circ</math> and <math>\angle{PDC}=15^\circ</math>, thus <math>\angle{ADP}=75^circ</math>. | + | <math>O_1P</math> is parallel to <math>O_2P’</math> so <math>\angle{P’O_2P}=\angle{O_1PO_2}=120^\circ</math>, so <math>\angle{PDP’}=60^\circ</math> and <math>\angle{PDC}=15^\circ</math>, thus <math>\angle{ADP}=75^{\circ}</math>. |
Let <math>M</math> be the foot of the perpendicular from <math>D</math> to <math>AC</math>. Then <math>\triangle{AMD}</math> is a 45-45-90 triangle and <math>\triangle{DMP}</math> is a 30-60-90 triangle. Thus | Let <math>M</math> be the foot of the perpendicular from <math>D</math> to <math>AC</math>. Then <math>\triangle{AMD}</math> is a 45-45-90 triangle and <math>\triangle{DMP}</math> is a 30-60-90 triangle. Thus | ||
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This gives us <math>AP=AM+MP=\sqrt{72}+\sqrt{24}</math>, and the answer is <math>72+24=\boxed{96}.</math> | This gives us <math>AP=AM+MP=\sqrt{72}+\sqrt{24}</math>, and the answer is <math>72+24=\boxed{96}.</math> | ||
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==Solution 5== | ==Solution 5== |
Revision as of 12:50, 27 November 2016
Problem
Point lies on the diagonal of square with . Let and be the circumcenters of triangles and respectively. Given that and , then , where and are positive integers. Find .
Solution 1
<geogebra>7b0d7e3170597705121a87857a112a90dff8cac9</geogebra>
Denote the midpoint of be and the midpoint of be . Because they are the circumcenters, both Os lie on the perpendicular bisectors of and and these bisectors go through and .
It is given that . Because and are radii of the same circle, the have the same length. This is also true of and . Because , . Thus, and are isosceles right triangles. Using the given information above and symmetry, . Because ABP and ADP share one side, have one side with the same length, and one equal angle, they are congruent by SAS. This is also true for triangle CPB and CPD. Because angles APB and APD are equal and they sum to 120 degrees, they are each 60 degrees. Likewise, both angles CPB and CPD have measures of 120 degrees.
Because the interior angles of a triangle add to 180 degrees, angle ABP has measure 75 degrees and angle PDC has measure 15 degrees. Subtracting, it is found that both angles and have measures of 30 degrees. Thus, both triangles and are 30-60-90 right triangles. Because F and E are the midpoints of AB and CD respectively, both FB and DE have lengths of 6. Thus, . Because of 45-45-90 right triangles, .
Now, using Law of Cosines on and letting ,
Using quadratic formula,
Because it is given that , , so the minus version of the above equation is too small.
Thus, and a + b = 24 + 72 =
Solution 2
This takes a slightly different route than Solution 1.
Solution 1 proves that and that . Construct diagonal and using the two statements above it quickly becomes clear that by isosceles triangle base angles. Let the midpoint of diagonal be , and since the diagonals are perpendicular, both triangle and triangle are 30-60-90 right triangles. Since , and . 30-60-90 triangles' sides are in the ratio , so . . Hence, .
Solution 3
Use vectors. In an plane, let be , be , be , be , and be P, where . It remains to find .
The line is the perpendicular bisector of and , so and lies on the line. Now compute the perpendicular bisector of . The center has coordinate , and the segment is part of the -axis, so the perpendicular bisector has equation . Since is the circumcenter of triangle , it lies on the perpendicular bisector of both and , so Similarly, The relation can now be written using dot product as Computation of both sides yields Solve for gives , so . The answer is 72+24
Solution 4
Translate so that the image of coincides . Let the image of be .
by symmetry, and because translation preserves angles. Thus . Therefore, quadrilateral is cyclic. Thus the image of coincides with .
is parallel to so , so and , thus .
Let be the foot of the perpendicular from to . Then is a 45-45-90 triangle and is a 30-60-90 triangle. Thus
and .
This gives us , and the answer is
Solution 5
Reflect across to . By symmetry is the circumcenter of
= , so
similarly = , so
Thus, , so that
By symmetry,
Therefore, since is the circumcenter of , =
Therefore
Using sine rule in , , and the answer is
By Kris17
See also
2011 AIME II (Problems • Answer Key • Resources) | ||
Preceded by Problem 12 |
Followed by Problem 14 | |
1 • 2 • 3 • 4 • 5 • 6 • 7 • 8 • 9 • 10 • 11 • 12 • 13 • 14 • 15 | ||
All AIME Problems and Solutions |
The problems on this page are copyrighted by the Mathematical Association of America's American Mathematics Competitions.