Difference between revisions of "2023 AMC 10A Problems/Problem 19"
| Line 6: | Line 6: | ||
Due to rotations preserving distance, we can bash the answer with the distance formula. D(A, P) = D(A', P), and D(B, P) = D(B',P). | Due to rotations preserving distance, we can bash the answer with the distance formula. D(A, P) = D(A', P), and D(B, P) = D(B',P). | ||
Thus we will square our equations to yield: | Thus we will square our equations to yield: | ||
| − | (1-r)^2+(2-s)^2=(3-r)^2+(1-s)^2, and (3-r)^2+(3-s)^2=(4-r)^2+(3-s)^2. | + | <math>(1-r)^2+(2-s)^2=(3-r)^2+(1-s)^2</math>, and <math>(3-r)^2+(3-s)^2=(4-r)^2+(3-s)^2</math>. |
| − | Cancelling (3-s)^2 from the second equation makes it clear that r equals 3.5. | + | Cancelling <math>(3-s)^2</math> from the second equation makes it clear that r equals 3.5. |
| − | Now substituting will yield (2.5)^2+(2-s)^2=(-0.5)^2+(1-s)^2. | + | Now substituting will yield <math>(2.5)^2+(2-s)^2=(-0.5)^2+(1-s)^2</math>. |
| − | 6.25+4-4s+s^2=0.25+1-2s+s^2 | + | <math>6.25+4-4s+s^2=0.25+1-2s+s^2</math> |
| − | 2s = 9, s = 4.5. | + | <math>2s = 9</math>, <math>s = 4.5</math>. |
| − | Now |r-s| = |3.5-4.5| = 1. | + | Now <math>|r-s| = |3.5-4.5| = 1</math>. |
== Video Solution 1 by OmegaLearn == | == Video Solution 1 by OmegaLearn == | ||
https://youtu.be/88F18qth0xI | https://youtu.be/88F18qth0xI | ||
Revision as of 15:56, 9 November 2023
The line segment formed by 
and 
is rotated to the line segment formed by 
and 
about the point 
. What is 
?
Solution 1
Due to rotations preserving distance, we can bash the answer with the distance formula. D(A, P) = D(A', P), and D(B, P) = D(B',P).
Thus we will square our equations to yield:
, and 
.
Cancelling 
from the second equation makes it clear that r equals 3.5.
Now substituting will yield 
.
, 
.
Now 
.
