2014 AMC 10A Problems/Problem 22
Contents
Problem
In rectangle , and . Let be a point on such that . What is ?
Solution (Trigonometry)
Note that . (If you do not know the tangent half-angle formula, it is ). Therefore, we have . Since is a triangle,
Solution 2 (Without Trigonometry)
Let be a point on line such that points and are distinct and that . By the angle bisector theorem, . Since is a right triangle, and . Additionally, Now, substituting in the obtained values, we get and . Substituting the first equation into the second yields , so . Because is a triangle, .
Solution 3 (Trigonometry)
By Law of SinesThus,
We see that is a triangle, leaving
Solution 4 (Measuring)
If we draw rectangle and whip out a protractor, we can draw a perfect , almost perfectly off of . Then we can draw , and use a ruler to measure it. We can clearly see that the is .
NOTE: this method is a last resort, and is pretty risky. Answer choice is also very close to , meaning that we wouldn't be 100% sure of our answer. However, If we measure the angles of , we can clearly see that it is a triangle, which verifies our answer of .
See Also
2014 AMC 10A (Problems • Answer Key • Resources) | ||
Preceded by Problem 21 |
Followed by Problem 23 | |
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