My first post

For students of class 6-8 (age 12 to 14)
IstiaqueZaman
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My first post

Unread post by IstiaqueZaman » Fri Sep 11, 2020 8:48 pm

$ABCD$ is a parallelogram. If $AB=6,AC=7,DE=2$.$CF= a/b$ and $gcd(a,b)=1$. then, $a+b$=?


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Mehrab4226
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Re: My first post

Unread post by Mehrab4226 » Sun Feb 07, 2021 11:37 pm

Let, Area of $\triangle ABC$ be denoted by $(ABC)$
$(ABC) = (ADC)$
$AC \times DE = AB \times CF$
The rest is up to you.
The Mathematician does not study math because it is useful; he studies it because he delights in it, and he delights in it because it is beautiful.
-Henri Poincaré

Raonak_Tasnim
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Re: My first post

Unread post by Raonak_Tasnim » Tue Feb 16, 2021 10:17 am

Answer will be 10

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sakib17442
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Re: My first post

Unread post by sakib17442 » Wed Apr 21, 2021 7:11 pm

This problem appeared as a problem in Regional contest (Junior Category) 2020. Okay, Here is the full solution:
Think about the triangle $ADC$, in triangle $ADC$, height of the triangle is $DE=2$ and the land is $AC=7$. Then the area of triangle $ADC$ is: $\frac{2*7}{2} = 7$. Now, we know that, the diagonal of a parallelogram divides the entire parallelogram into half. It means the total area of parallelogram $ABCD$ is 2 times the area of triangle $ADC = 7*2 = 14$. Now, the next step is simple. Lets think about the entire parallelogram $ABCD$. We determined that the area of parallelogram $ABCD$ is 14. The height of parallelogram $ABCD$ is $CF$ and land is $AB$. Now, it means,
$CF * AB = 14$
$ CF*6=14$
$ CF = \frac{14}{6}$
$CF = \frac{7}{3}$
Then, CF = $\frac{7}{3} CF=\frac{a}{b}$
gcd(7,3)= 1. Then a=7, b=3. $a+B=7+3=10 $
So, the answer is 10
By the way, it is also my first post :D

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