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Difference between revisions of "2010 AMC 10B Problems/Problem 14"
(Redirected page to 2010 AMC 12B Problems/Problem 10)
(Tag: New redirect)
 
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We must find the average of the numbers from 1 to 99 and <math> x </math> in terms of <math> x </math>. The sum of all these terms is <math> \frac{99(100)}{2}+x=99(50)+x </math>. We must divide this by the total number of terms, which is <math> 100 </math>. We get: <math> \frac{99(50)+x}{100} </math>. This is equal to <math> 100x </math>, as stated in the problem. We have: <math> \frac{99(50)+x}{100}=100x </math>. We can now cross multiply. This gives:
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#redirect [[2010 AMC 12B Problems/Problem 10]]
<math>
 
100(100x)=99(50)+x
 
10000x=99(50)+x
 
9999x=99(50)
 
101x=50
 
x=\frac{50}{101}
 
</math>
 
This gives us our answer. <math> \boxed{\mathrm{(B)}= \frac{50}{101}} </math>
 

Latest revision as of 20:42, 26 May 2020

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