Difference between revisions of "2022 AMC 12A Problems/Problem 25"
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| Line 10: | Line 10: | ||
We can easily prove that | We can easily prove that | ||
| − | + | <cmath> | |
a + b - 2 r = c . \hspace{1cm} (1) | a + b - 2 r = c . \hspace{1cm} (1) | ||
| − | + | </cmath> | |
Recall that <math>c = \sqrt{a^2 + b^2}</math>. | Recall that <math>c = \sqrt{a^2 + b^2}</math>. | ||
Taking square of (1) and reorganizing all terms, (1) is converted as | Taking square of (1) and reorganizing all terms, (1) is converted as | ||
| − | + | <cmath> | |
\left( a - 2 r \right) \left( b - 2 r \right) = 2 r^2 . | \left( a - 2 r \right) \left( b - 2 r \right) = 2 r^2 . | ||
| − | + | </cmath> | |
| Line 27: | Line 27: | ||
We can easily prove that | We can easily prove that | ||
| − | + | <cmath> | |
2 r - a - b = c . \hspace{1cm} (2) | 2 r - a - b = c . \hspace{1cm} (2) | ||
| − | + | </cmath> | |
Recall that <math>c = \sqrt{a^2 + b^2}</math>. | Recall that <math>c = \sqrt{a^2 + b^2}</math>. | ||
Taking square of (2) and reorganizing all terms, (2) is converted as | Taking square of (2) and reorganizing all terms, (2) is converted as | ||
| − | + | <cmath> | |
\left( a - 2 r \right) \left( b - 2 r \right) = 2 r^2 . | \left( a - 2 r \right) \left( b - 2 r \right) = 2 r^2 . | ||
| − | + | </cmath> | |
Putting both cases together, for given <math>r</math>, we look for solutions of <math>a</math> and <math>b</math> satisfying | Putting both cases together, for given <math>r</math>, we look for solutions of <math>a</math> and <math>b</math> satisfying | ||
| − | + | <cmath> | |
\left( a - 2 r \right) \left( b - 2 r \right) = 2 r^2 , | \left( a - 2 r \right) \left( b - 2 r \right) = 2 r^2 , | ||
| − | + | </cmath> | |
with either <math>a, b > 2r</math> or <math>0 < a, b < r</math>. | with either <math>a, b > 2r</math> or <math>0 < a, b < r</math>. | ||
| Line 47: | Line 47: | ||
For equation | For equation | ||
| − | + | <cmath> | |
uv = 2 r^2 , | uv = 2 r^2 , | ||
| − | + | </cmath> | |
we observe that the R.H.S. is a not a perfect square. Thus, the number of positive <math>(u, v)</math> is equal to the number of positive divisors of <math>2 r^2</math>. | we observe that the R.H.S. is a not a perfect square. Thus, the number of positive <math>(u, v)</math> is equal to the number of positive divisors of <math>2 r^2</math>. | ||
Revision as of 20:55, 11 November 2022
Problem
A circle with integer radius 
is centered at 
. Distinct line segments of length 
connect points 
to 
for 
and are tangent to the circle, where 
, 
, and are all positive integers and
. What is the ratio 
for the least possible value of ?
Solution
Case 1: The tangent and the origin are on the opposite sides of the circle.
In this case, 
.
We can easily prove that
![\[a + b - 2 r = c . \hspace{1cm} (1)\]](http://latex.artofproblemsolving.com/1/f/d/1fd111d5ba78eef050e31cde44f28f35ba23e9a2.png)
Recall that 
.
Taking square of (1) and reorganizing all terms, (1) is converted as
![\[\left( a - 2 r \right) \left( b - 2 r \right) = 2 r^2 .\]](http://latex.artofproblemsolving.com/4/6/9/4699309d43b90942323ba0269bd790f972b86a5b.png)
Case 2: The tangent and the origin are on the opposite sides of the circle.
In this case, 
.
We can easily prove that
![\[2 r - a - b = c . \hspace{1cm} (2)\]](http://latex.artofproblemsolving.com/f/8/a/f8a717cfe7d761ff318a5957450c67646c80c742.png)
Recall that .
Taking square of (2) and reorganizing all terms, (2) is converted as
Putting both cases together, for given , we look for solutions of 
and 
satisfying
![\[\left( a - 2 r \right) \left( b - 2 r \right) = 2 r^2 ,\]](http://latex.artofproblemsolving.com/8/6/7/867b085f01b83cf42506a0425296919315bafa5e.png)
with either or .
Now, we need to find the smallest , such that the number of feasible solutions of 
is at least 14.
For equation
![\[uv = 2 r^2 ,\]](http://latex.artofproblemsolving.com/f/b/a/fba44e90132e7cb9702e53b47aa80b6650442bfa.png)
we observe that the R.H.S. is a not a perfect square. Thus, the number of positive 
is equal to the number of positive divisors of 
.
Second, for each feasible positive solution , its opposite 
is also a solution. However, 
corresponds to a feasible solution if with 
and 
, but may not lead to a feasible solution if with 
and 
.
Recall that we are looking for that leads to at least 14 solutions.
Therefore, the above observations imply that we must have , such that has least 7 positive divisors.
Following this guidance, we find the smallest is 6. This leads to the following solutions:
\begin{enumerate}
\item 
, 
.
\item 
, 
.
\item 
, 
.
\item 
, 
.
\item 
, 
.
\item 
, 
.
\item 
, 
.
\end{enumerate}
Therefore, 
.
~Steven Chen (Professor Chen Education Palace, www.professorchenedu.com)
Video Solution
~Steven Chen (Professor Chen Education Palace, www.professorchenedu.com)
