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Difference between revisions of "1969 AHSME Problems/Problem 16"

(Solution)
(Solution)
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== Solution ==
 
== Solution ==
 
Since <math>a=kb</math>, we can write <math>(a-b)^n</math> as <math>(kb-b)^n</math>.
 
Since <math>a=kb</math>, we can write <math>(a-b)^n</math> as <math>(kb-b)^n</math>.
Expanding, the second term is <math>-k^{n-1}b^{n}{n}\choose{1}</math>, and the third term is <math>k^{n-2}b^{n}{n}\choose{2}</math>, so we can write the equation
+
Expanding, the second term is <math>-k^{n-1}b^{n}*{n}\choose{1}</math>, and the third term is <math>k^{n-2}b^{n}*{n}\choose{2}</math>, so we can write the equation
<math>-k^{n-1}b^{n}{n}\choose{1}+k^{n-2}b^{n}{n}\choose{2}=0</math>
+
<cmath>-k^{n-1}b^{n}{n}\choose{1}+k^{n-2}b^{n}{n}\choose{2}=0</cmath>
 
Simplifying and multiplying by two to remove the denominator, we get
 
Simplifying and multiplying by two to remove the denominator, we get
<math>-2k^{n-1}b^{n}n+k^{n-2}b^{n}n(n+1)=0</math>
+
<cmath>-2k^{n-1}b^{n}n+k^{n-2}b^{n}n(n+1)=0</cmath>
 
Factoring, we get
 
Factoring, we get
<math>k^{n-2}b^{n}n(-2k+n+1)=0</math>
+
<cmath>k^{n-2}b^{n}n(-2k+n+1)=0</cmath>
 
Dividing by <math>k^{n-2}b^{n}n</math> gives
 
Dividing by <math>k^{n-2}b^{n}n</math> gives
<math>n(-2k+n+1)=0</math>.
+
<cmath>n(-2k+n+1)=0</cmath>.
 
Since it is given that <math>n\ge2</math>, <math>n</math> cannot equal 0, so we can divide by n, which gives
 
Since it is given that <math>n\ge2</math>, <math>n</math> cannot equal 0, so we can divide by n, which gives
<math>-2k+n+1=0.
+
<math></math>-2k+n+1=0<math>.
 
Solving for </math>n<math> gives
 
Solving for </math>n<math> gives
</math>n=2k-1<math>, so the answer is </math>\fbox{C}$.
+
<cmath>n=2k-1</cmath>,so the answer is </math>\fbox{C}$.
  
 
== See also ==
 
== See also ==

Revision as of 13:08, 10 July 2015

Problem

When $(a-b)^n,n\ge2,ab\ne0$, is expanded by the binomial theorem, it is found that when $a=kb$, where $k$ is a positive integer, the sum of the second and third terms is zero. Then $n$ equals:

$\text{(A) } \tfrac{1}{2}k(k-1)\quad \text{(B) } \tfrac{1}{2}k(k+1)\quad \text{(C) } 2k-1\quad \text{(D) } 2k\quad \text{(E) } 2k+1$

Solution

Since $a=kb$, we can write $(a-b)^n$ as $(kb-b)^n$. Expanding, the second term is $-k^{n-1}b^{n}*{n}\choose{1}$, and the third term is $k^{n-2}b^{n}*{n}\choose{2}$, so we can write the equation 

\[-k^{n-1}b^{n}{n}\choose{1}+k^{n-2}b^{n}{n}\choose{2}=0\] (Error compiling LaTeX. Unknown error_msg)

Simplifying and multiplying by two to remove the denominator, we get \[-2k^{n-1}b^{n}n+k^{n-2}b^{n}n(n+1)=0\] Factoring, we get \[k^{n-2}b^{n}n(-2k+n+1)=0\] Dividing by $k^{n-2}b^{n}n$ gives \[n(-2k+n+1)=0\]. Since it is given that $n\ge2$, $n$ cannot equal 0, so we can divide by n, which gives $$ (Error compiling LaTeX. Unknown error_msg)-2k+n+1=0$. Solving for$n$gives <cmath>n=2k-1</cmath>,so the answer is$\fbox{C}$.

See also

1969 AHSC (ProblemsAnswer KeyResources)
Preceded by
Problem 15 		Followed by
Problem 17
1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35
All AHSME Problems and Solutions

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