Difference between revisions of "2020 AMC 8 Problems/Problem 12"

Revision as of 00:59, 18 November 2020

For positive integers $n$ , the notation $n!$ denotes the product of the integers from $n$ to $1$ . What value of $N$ satisfies the following equation? $5!\cdot 9!=12\cdot N!$

Solution 1

Notice that $5!$ = $2*3*4*5,$ and we can combine the numbers to create a larger factorial. To turn $9!$ into $10!,$ we need to multiply $9!$ by $2*5,$ which equals to $10!.$

Therefore, we have

$10!*12=12*N!.$ We can cancel the $12$ 's, since we are multiplying them on both sides of the equation.

We have

$10!=N!.$ From here, it is obvious that $N=\boxed{10\textbf{(A)}}.$

-iiRishabii

@@ Line 8: / Line 8: @@
 <cmath>10!*12=12*N!.</cmath>
-We can cancel the <math>12s,</math> since we are multiplying them on both sides of the equation.
+We can cancel the <math>12</math>'s, since we are multiplying them on both sides of the equation.
 We have
 <cmath>10!=N!.</cmath>
-From here, it is obvious that <math>N=10(A).</math>
+From here, it is obvious that <math>N=\boxed{10\textbf{(A)}}.</math>
 -iiRishabii

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Difference between revisions of "2020 AMC 8 Problems/Problem 12"

Revision as of 00:59, 18 November 2020

Solution 1