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Difference between revisions of "1998 JBMO Problems/Problem 2"

(Solution)
m (Solution 3)
 
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Let <math>BC = a, ED = 1 - a</math>
 
Let <math>BC = a, ED = 1 - a</math>
  
Let angle <math>DAC</math> = <math>X</math>
+
Let <math>\angle DAC = X</math>
  
Applying cosine rule to triangle <math>DAC</math> we get:
+
Applying cosine rule to <math>\triangle DAC</math> we get:
  
<math>Cos X = (AC ^ {2} + AD ^ {2} - DC ^ {2}) / (2 * AC * AD )</math>
+
<math>\cos X = \frac{AC ^ {2} + AD ^ {2} - DC ^ {2}}{ 2 \cdot AC \cdot AD }</math>
  
 
Substituting <math>AC^{2} = 1^{2} + a^{2}, AD ^ {2} = 1^{2} + (1-a)^{2}, DC = 1</math> we get:
 
Substituting <math>AC^{2} = 1^{2} + a^{2}, AD ^ {2} = 1^{2} + (1-a)^{2}, DC = 1</math> we get:
  
<math>Cos^{2} X = (1 - a - a ^ {2}) ^ {2} / ((1 + a^{2})(2 - 2a + a^{2}))</math>
+
<math>\cos^{2} X = \frac{(1 - a - a ^ {2}) ^ {2}}{(1 + a^{2})(2 - 2a + a^{2})}</math>
  
From above, <math>Sin^{2} X = 1 - Cos^{2} X  =  1 / ((1 + a^{2})(2 - 2a + a^{2})) = 1/(AC^{2}.AD^{2})</math>
+
From above, <math>\sin^{2} X = 1 - \cos^{2} X  =  \frac{1}{(1 + a^{2})(2 - 2a + a^{2})} = \frac{1}{AC^{2} \cdot AD^{2}}</math>
  
Thus,  <math>Sin X * AC * AD = 1</math>
+
Thus,  <math>\sin X \cdot AC \cdot AD = 1</math>
  
So, <math>Area</math> of triangle <math>DAC</math> = <math>(1/2)*Sin X * AC * AD = 1/2</math>
+
So, area of <math>\triangle DAC</math> = <math>\frac{1}{2}\cdot \sin X \cdot AC \cdot AD = \frac{1}{2}</math>
  
Let <math>AF</math> be the altitude of triangle DAC from A.  
+
Let <math>AF</math> be the altitude of <math>\triangle DAC</math> from <math>A</math>.  
  
So <math>1/2*DC*AF = 1/2</math>
+
So <math>\frac{1}{2}\cdot DC\cdot AF = \frac{1}{2}</math>
  
 
This implies <math>AF = 1</math>.  
 
This implies <math>AF = 1</math>.  
  
Since <math>AFCB</math> is a cyclic quadrilateral with <math>AB = AF</math>, traingle <math>ABC</math> is congruent to <math>AFC</math>.  
+
Since <math>AFCB</math> is a cyclic quadrilateral with <math>AB = AF</math>, <math>\triangle ABC</math> is congruent to <math>\triangle AFC</math>.  
Similarly <math>AEDF</math> is a cyclic quadrilateral and traingle <math>AED</math> is congruent to <math>AFD</math>.  
+
Similarly <math>AEDF</math> is a cyclic quadrilateral and <math>\triangle AED</math> is congruent to <math>\triangle AFD</math>.  
  
So <math>area</math> of triangle <math>ABC</math> + <math>area</math> of triangle <math>AED</math> = <math>area</math> of Triangle <math>ADC</math>.
+
So area of <math>\triangle ABC</math> + area of <math>\triangle AED</math> = area of <math>\triangle ADC</math>.
Thus <math>area</math> of pentagon <math>ABCD</math> = <math>area</math> of <math>ABC</math> + <math>area</math> of <math>AED</math> + <math>area</math> of <math>DAC</math> = <math>1/2 + 1/2 = 1</math>
+
Thus area of pentagon <math>ABCD</math> = area of <math>\triangle ABC</math> + area of <math>\triangle AED</math> + area of <math>\triangle DAC</math> = <math>\frac{1}{2}+\frac{1}{2} = 1</math>
  
  
  
 
By <math>Kris17</math>
 
By <math>Kris17</math>
 
  
 
=== Solution 2 ===
 
=== Solution 2 ===
Line 57: Line 56:
 
Let <math>AC=b, AD=c</math>.
 
Let <math>AC=b, AD=c</math>.
  
 +
<cmath>
 
\begin{align*}
 
\begin{align*}
 
[ACD]&=\frac{1}{4}\sqrt{(1+b+c)(-1+b+c)(1-b+c)(1+b-c)}\\
 
[ACD]&=\frac{1}{4}\sqrt{(1+b+c)(-1+b+c)(1-b+c)(1+b-c)}\\
Line 68: Line 68:
 
&=\frac{1}{2}
 
&=\frac{1}{2}
 
\end{align*}
 
\end{align*}
 +
</cmath>
 +
 +
Total area <math>=[ABC]+[AED]+[ACD]=\frac{1}{2}+\frac{1}{2}=1</math>.
 +
 +
By durianice
 +
 +
=== Solution 3 ===
 +
Construct <math>AD</math> and <math>AC</math> to partition the figure into <math>ABC</math>, <math>ACD</math> and <math>ADE</math>.
 +
 +
Rotate <math>ADE</math> with centre <math>A</math> such that <math>AE</math> coincides with <math>AB</math> and <math>AD</math> is mapped to <math>AD'</math>. Hence the area of the pentagon is still preserved and it suffices to find the area of the quadrilateral <math>AD'CD</math>.
 +
 +
Hence <math>[AD'C]</math> = <math>\frac{1}{2}</math> (<math>D'E + BC</math>)<math>AB</math>= <math>\frac{1}{2}</math>
 +
 +
Since <math>CD</math> = <math>CD'</math>, <math>AC</math> = <math>AC</math> and <math>AD</math> = <math>AD'</math>, by SSS Congruence, <math>ACD</math> and <math>ACD'</math> are congruent, so <math>[ACD]</math> = <math>\frac{1}{2}</math>
 +
 +
So the area of pentagon <math>ABCDE = \frac{1}{2} + \frac{1}{2} = 1</math>.
 +
 +
- SomebodyYouUsedToKnow
  
Total area <math>=[ABC]+[AED]+[ACD]=\frac{1}{2}+\frac{1}{2}=1</math>
+
==See Also==
 +
{{JBMO box|year=1998|num-b=1|num-a=3|five=}}

Latest revision as of 07:31, 2 July 2020

Problem 2

Let $ABCDE$ be a convex pentagon such that $AB=AE=CD=1$, $\angle ABC=\angle DEA=90^\circ$ and $BC+DE=1$. Compute the area of the pentagon.


Solutions

Solution 1

Let $BC = a, ED = 1 - a$

Let $\angle DAC = X$

Applying cosine rule to $\triangle DAC$ we get:

$\cos X = \frac{AC ^ {2} + AD ^ {2} - DC ^ {2}}{ 2 \cdot AC \cdot AD }$

Substituting $AC^{2} = 1^{2} + a^{2}, AD ^ {2} = 1^{2} + (1-a)^{2}, DC = 1$ we get:

$\cos^{2} X = \frac{(1 - a - a ^ {2}) ^ {2}}{(1 + a^{2})(2 - 2a + a^{2})}$

From above, $\sin^{2} X = 1 - \cos^{2} X = \frac{1}{(1 + a^{2})(2 - 2a + a^{2})} = \frac{1}{AC^{2} \cdot AD^{2}}$

Thus, $\sin X \cdot AC \cdot AD = 1$

So, area of $\triangle DAC$ = $\frac{1}{2}\cdot \sin X \cdot AC \cdot AD = \frac{1}{2}$

Let $AF$ be the altitude of $\triangle DAC$ from $A$.

So $\frac{1}{2}\cdot DC\cdot AF = \frac{1}{2}$

This implies $AF = 1$.

Since $AFCB$ is a cyclic quadrilateral with $AB = AF$, $\triangle ABC$ is congruent to $\triangle AFC$. Similarly $AEDF$ is a cyclic quadrilateral and $\triangle AED$ is congruent to $\triangle AFD$.

So area of $\triangle ABC$ + area of $\triangle AED$ = area of $\triangle ADC$. Thus area of pentagon $ABCD$ = area of $\triangle ABC$ + area of $\triangle AED$ + area of $\triangle DAC$ = $\frac{1}{2}+\frac{1}{2} = 1$


By $Kris17$

Solution 2

Let $BC = x, DE = y$. Denote the area of $\triangle XYZ$ by $[XYZ]$.

$[ABC]+[AED]=\frac{1}{2}(x+y)=\frac{1}{2}$

$[ACD]$ can be found by Heron's formula.

$AC=\sqrt{x^2+1}$

$AD=\sqrt{y^2+1}$

Let $AC=b, AD=c$.

\begin{align*} [ACD]&=\frac{1}{4}\sqrt{(1+b+c)(-1+b+c)(1-b+c)(1+b-c)}\\ &=\frac{1}{4}\sqrt{((b+c)^2-1)(1-(b-c)^2)}\\ &=\frac{1}{4}\sqrt{(b+c)^2+(b-c)^2-(b^2-c^2)^2-1}\\ &=\frac{1}{4}\sqrt{2(b^2+c^2)-(b^2-c^2)^2-1}\\ &=\frac{1}{4}\sqrt{2(x^2+y^2+2)-(x^2-y^2)^2-1}\\ &=\frac{1}{4}\sqrt{2((x+y)^2-2xy+2)-(x+y)^2(x-y)^2-1}\\ &=\frac{1}{4}\sqrt{5-4xy-(x-y)^2}\\ &=\frac{1}{4}\sqrt{5-(x+y)^2}\\ &=\frac{1}{2} \end{align*}

Total area $=[ABC]+[AED]+[ACD]=\frac{1}{2}+\frac{1}{2}=1$.

By durianice

Solution 3

Construct $AD$ and $AC$ to partition the figure into $ABC$, $ACD$ and $ADE$.

Rotate $ADE$ with centre $A$ such that $AE$ coincides with $AB$ and $AD$ is mapped to $AD'$. Hence the area of the pentagon is still preserved and it suffices to find the area of the quadrilateral $AD'CD$.

Hence $[AD'C]$ = $\frac{1}{2}$ ($D'E + BC$)$AB$= $\frac{1}{2}$

Since $CD$ = $CD'$, $AC$ = $AC$ and $AD$ = $AD'$, by SSS Congruence, $ACD$ and $ACD'$ are congruent, so $[ACD]$ = $\frac{1}{2}$

So the area of pentagon $ABCDE = \frac{1}{2} + \frac{1}{2} = 1$.

- SomebodyYouUsedToKnow

See Also

1998 JBMO (ProblemsResources)
Preceded by
Problem 1 		Followed by
Problem 3
1 2 3 4
All JBMO Problems and Solutions


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