371,484 views
37 votes
37 votes
How do I solve? So far no one could be of help. It’s asking for the area of this regular polygon.

How do I solve? So far no one could be of help. It’s asking for the area of this regular-example-1
User GETah
by
2.2k points

1 Answer

15 votes
15 votes

We can notice the triangle on the square, hypotenuse is 8m and the base is half of the lengt of the square we will name it x

then

we can use pythagoras to solve


a^2+b^2=h^2

where a and b aer sides of the triangle and h the hypotenuse

replacing


\begin{gathered} x^2+x^2=8^2 \\ 2x^2=64 \\ x^2=(64)/(2) \\ \\ x=\sqrt[]{32}=4\sqrt[]{2} \end{gathered}

the length of x is half of the side of the square then the side of the square is


4\sqrt[]{2}*2=8\sqrt[]{2}

each side of the square is 8v2 meters

Area

we use formula of the area


\begin{gathered} A=l* l \\ A=8\sqrt[]{2}*8\sqrt[]{2} \\ \\ A=128 \end{gathered}

area of the square is 128 square meters

Perimeter

we use formula of the perimeter


\begin{gathered} P=4l \\ P=4*8\sqrt[]{2} \\ P=32\sqrt[]{2} \end{gathered}

perimeter of the square is 32v2 meters

How do I solve? So far no one could be of help. It’s asking for the area of this regular-example-1
User Yohei
by
3.3k points