Difference between revisions of "2021 WSMO Team Round/Problem 10"
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==Solution== | ==Solution== | ||
− | + | We can see that we can complete the square inside the second square root: | |
<cmath>\sqrt{3m^2+3n^2-6m+12n+15}</cmath> | <cmath>\sqrt{3m^2+3n^2-6m+12n+15}</cmath> | ||
+ | |||
<cmath>=\sqrt{3(m^2+n^2-2m+4n+5)}</cmath> | <cmath>=\sqrt{3(m^2+n^2-2m+4n+5)}</cmath> | ||
+ | |||
<cmath>=\sqrt{3(m^2-2m+1+n^2+4n+4)}</cmath> | <cmath>=\sqrt{3(m^2-2m+1+n^2+4n+4)}</cmath> | ||
+ | |||
<cmath>=\sqrt{3((m-1)^2+(n+2)^2)}</cmath> | <cmath>=\sqrt{3((m-1)^2+(n+2)^2)}</cmath> | ||
− | |||
− | + | Then, we can find the minimum by setting this to <math>0</math>, which occurs when <math>m=1</math> and <math>n=-2</math>. This gives us the minimum of <math>a=\sqrt{5}</math>. (If we set the other square root to <math>0</math>, we get a minimum of <math>\sqrt{15}</math> which is larger than <math>\sqrt{5}</math>.) Therefore <math>a^2=(\sqrt{5})^2=\boxed{5}</math>. |
Latest revision as of 15:53, 14 June 2023
Problem
The minimum possible value ofcan be expressed as Find
Proposed by pinkpig
Solution
We can see that we can complete the square inside the second square root:
Then, we can find the minimum by setting this to , which occurs when and . This gives us the minimum of . (If we set the other square root to , we get a minimum of which is larger than .) Therefore .