Difference between revisions of "2023 AIME I Problems/Problem 12"
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Draw line segments from P to points A, B, and C. And label the angle measure of <math>\angle{BFP}</math>, <math>\angle{CDP}</math>, and <math>\angle{AEP}</math> to be <math>\alpha</math> | Draw line segments from P to points A, B, and C. And label the angle measure of <math>\angle{BFP}</math>, <math>\angle{CDP}</math>, and <math>\angle{AEP}</math> to be <math>\alpha</math> | ||
− | Using Law of Cosines (note that <math>cos{\angle{AFP}}=cos{\angle{BDP}}=cos{\angle{CEP}}=cos{ | + | Using Law of Cosines (note that <math>cos{\angle{AFP}}=cos{\angle{BDP}}=cos{\angle{CEP}}=cos{\degrees{180}-\alpha}=-cos{\alpha}</math>) |
<cmath> | <cmath> | ||
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Therefore, we want to solve for <math>DP+EP+FP</math> | Therefore, we want to solve for <math>DP+EP+FP</math> | ||
− | Notice that <math>\angle{APC}=\angle{APC}=\angle{APC}= | + | Notice that <math>\angle{APC}=\angle{APC}=\angle{APC}=\degrees{120}</math> |
We can use Law of Cosines again to solve for the sides of DEF, which have side lengths of 13, 42, and 35, and area <math>120\sqrt{3}</math>. | We can use Law of Cosines again to solve for the sides of DEF, which have side lengths of 13, 42, and 35, and area <math>120\sqrt{3}</math>. |
Revision as of 00:03, 9 February 2023
Problem 12
Let be an equilateral triangle with side length . Points , , and lie on sides , , and , respectively, such that , , and . A unique point inside has the property that Find .
Solution
Denote .
In , we have . Thus,
Taking the real and imaginary parts, we get
In , analogous to the analysis of above, we get
Taking , we get
Taking , we get
Taking , we get
Therefore,
Therefore, .
~Steven Chen (Professor Chen Education Palace, www.professorchenedu.com)
Solution 2 (no trig)
Drop the perpendiculars from to , , , and call them and respectively. This gives us three similar right triangles , , and
The sum of the perpendiculars to a point within an equilateral triangle is always constant, so we have that
The sum of the lengths of the alternating segments split by the perpendiculars from a point within an equilateral triangle is always equal to half the perimeter, so which means that
Finally,
Thus,
~anon
Solution 3 (LOC)
This solution is heavily inspired by AIME 1999 Problem 14 Solution 2 (a similar question)
Draw line segments from P to points A, B, and C. And label the angle measure of , , and to be
Using Law of Cosines (note that $cos{\angle{AFP}}=cos{\angle{BDP}}=cos{\angle{CEP}}=cos{\degrees{180}-\alpha}=-cos{\alpha}$ (Error compiling LaTeX. Unknown error_msg))
We can perform this operation: (1) - (2) + (3) - (4) + (5) - (6)
Leaving us with (after combining and simplifying)
Therefore, we want to solve for
Notice that $\angle{APC}=\angle{APC}=\angle{APC}=\degrees{120}$ (Error compiling LaTeX. Unknown error_msg)
We can use Law of Cosines again to solve for the sides of DEF, which have side lengths of 13, 42, and 35, and area .
Label the lengths of , , and to be x, y, and z.
Therefore, using the area formula,
In addition, we know that
By using Law of Cosines for , , and respectively
Because we want , which is , we see that
So plugging the results back into the equation before, we get
Giving us
~Danielzh
See also
2023 AIME I (Problems • Answer Key • Resources) | ||
Preceded by Problem 11 |
Followed by Problem 13 | |
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.