Difference between revisions of "1959 AHSME Problems/Problem 40"

Revision as of 19:05, 21 July 2024

Problem

In $\triangle ABC$ , $BD$ is a median. $CF$ intersects $BD$ at $E$ so that $\overline{BE}=\overline{ED}$ . Point $F$ is on $AB$ . Then, if $\overline{BF}=5$ , $\overline{BA}$ equals: $\textbf{(A)}\ 10 \qquad\textbf{(B)}\ 12\qquad\textbf{(C)}\ 15\qquad\textbf{(D)}\ 20\qquad\textbf{(E)}\ \text{none of these}$

Solution 1

$[asy] import geometry; point A = (0,0); point B = (5,8); point C = (16,0); point D = midpoint(A--C); point E = midpoint(B--D); point F, G; triangle ABC = triangle(A,B,C); // Triangle ABC draw(ABC); dot(A); label("A",A,SW); dot(B); label("B",B,N); dot(C); label("C",C,SE); // Segment BD draw(B--D); dot(D); label("D",D,S); dot(E); label("E",E,SW); // Segment CF pair[] f = intersectionpoints(line(C,E),A--B); F = f[0]; dot(F); label("F",F,W); draw(C--F); // Segment DG pair[] g = intersectionpoints(parallel(D,line(F,C)),A--B); G = g[0]; dot(G); label("G",G,W); draw(D--G); // Length Label label("$5$", midpoint(B--F), NW); [/asy]$

Draw $\overline{DG} \parallel \overline{FC}$ with $G$ on $\overline{AB}$ . We know that $GF = BF = 5$ , since $\triangle BFE \sim \triangle BGD$ .

Likewise, since $\triangle ADG \sim \triangle ACF$ , we know that $AG=5$ .

Thus, $AF=AG+GF+FB=5+5+5=15$ , which is answer $\fbox{\textbf{(C)}}$ .

Solution 2

Let $AD=DC=x$ and $BE=ED=y$ . By Menelaus' Theorem on $\triangle BEF$ and $\overleftrightarrow{AC}$ , we know the following: \begin{align*} \frac{BD}{ED}*\frac{EC}{FC}*\frac{FA}{BA} &= 1 \\ \frac{2y}{y}*\frac{EC}{FC}*\frac{FA}{5+FA} &= 1 \\ \frac{EC}{FC}*\frac{FA}{5+FA} &= \frac{1}{2} \end{align*} By applying Menelaus again on $\triangle CDE$ and $\overleftrightarrow{AB}$ , we see that: \begin{align*} \frac{CA}{DA}*\frac{DB}{EB}*\frac{EF}{CF} &= 1 \\ \frac{2x}{x}*\frac{2y}{y}*\frac{CF-EC}{FC} &= 1 \\ 1-\frac{EC}{FC} &= \frac{1}{4} \\ \frac{EC}{FC} &= \frac{3}{4} \end{align*} Substituting $\frac{3}{4}$ for $\frac{EC}{FC}$ into the previous equation, we can now solve for $FA$ : \begin{align*} \frac{EC}{FC}*\frac{FA}{5+FA} &= \frac{1}{2} \\ \frac{3}{4}*\frac{FA}{5+FA} &= \frac{1}{2} \\ \frac{FA}{5+FA} &= \frac{2}{3} \\ 3FA &= 10+2FA \\ FA &= 10 \end{align*} Because $AB=AF+FB$ , $AB=5+10=\boxed{\textbf{(C) } 10}$ .

1959 AHSC (Problems • Answer Key • Resources)
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Difference between revisions of "1959 AHSME Problems/Problem 40"

Revision as of 19:05, 21 July 2024

Contents

Problem

Solution 1

Solution 2

See also

@@ Line 5: / Line 5: @@
 <math>\textbf{(A)}\ 10 \qquad\textbf{(B)}\ 12\qquad\textbf{(C)}\ 15\qquad\textbf{(D)}\ 20\qquad\textbf{(E)}\ \text{none of these}   </math>
-== Solution ==
+== Solution 1 ==
 <asy>
@@ Line 59: / Line 59: @@
 Thus, <math>AF=AG+GF+FB=5+5+5=15</math>, which is answer <math>\fbox{\textbf{(C)}}</math>.
+== Solution 2 ==
+Let <math>AD=DC=x</math> and <math>BE=ED=y</math>. By [[Menelaus' Theorem]] on <math>\triangle BEF</math> and <math>\overleftrightarrow{AC}</math>, we know the following:
+\begin{align*}
+\frac{BD}{ED}*\frac{EC}{FC}*\frac{FA}{BA} &= 1 \\
+\frac{2y}{y}*\frac{EC}{FC}*\frac{FA}{5+FA} &= 1 \\
+\frac{EC}{FC}*\frac{FA}{5+FA} &= \frac{1}{2}
+\end{align*}
+By applying Menelaus again on <math>\triangle CDE</math> and <math>\overleftrightarrow{AB}</math>, we see that:
+\begin{align*}
+\frac{CA}{DA}*\frac{DB}{EB}*\frac{EF}{CF} &= 1 \\
+\frac{2x}{x}*\frac{2y}{y}*\frac{CF-EC}{FC} &= 1 \\
+-\frac{EC}{FC} &= \frac{1}{4} \\
+\frac{EC}{FC} &= \frac{3}{4}
+\end{align*}
+Substituting <math>\frac{3}{4}</math> for <math>\frac{EC}{FC}</math> into the previous equation, we can now solve for <math>FA</math>:
+\begin{align*}
+\frac{EC}{FC}*\frac{FA}{5+FA} &= \frac{1}{2} \\
+\frac{3}{4}*\frac{FA}{5+FA} &= \frac{1}{2} \\
+\frac{FA}{5+FA} &= \frac{2}{3} \\
+FA &= 10+2FA \\
+FA &= 10
+\end{align*}
+Because <math>AB=AF+FB</math>, <math>AB=5+10=\boxed{\textbf{(C) } 10}</math>.
 == See also ==