# Solution to the Four Squares in a Semi-Circle Puzzle +-- {.image} [[FourSquaresinaSemiCircle.png:pic]] > Four squares inside a semicircle. What’s the semicircle’s area? =-- ## Solution by [[Pythagoras' Theorem]] and [[similar triangles]] +-- {.image} [[FourSquaresinaSemiCircleMidpoint.png:pic]] =-- Let $O$ be the centre of the circle and $M$ the [[midpoint]] of the [[chord]] $A C$. Then $O A$ and $O B$ are radii of the circle and $O M$ meets $A C$ at a [[right-angle]]. As $M$ is the midpoint of $A C$, $M C$ has length $4$. To find a radius, we can use [[Pythagoras' Theorem]] on triangle $M O C$ once we have found the length of $M O$. To find this, we start by noticing that triangles $M D O$ and $A B C$ are similar. So: $$M O : A C = M D : A B$$ Let $a$ be the height of the left-hand boxes and $b$ the height of the right-hand boxes. Then $A B = 2 a + 2 b$. As $M$ is the midpoint of $A C$, its height above the diameter is $\frac{a + b}{2}$ and this is the length of $M D$. So the ratio $M D : A B$ is $1 : 4$ and so $M O = 2$. From Pythagoras' Theorem, the radius $r = O B$ satisfies $$ r^2 = O M^2 + M C^2 = 2^2 + 4^2 = 20 $$ and so the area of the semi-circle is: $$ \frac{\pi r^2}{2} = \frac{\pi 20}{2} = 10 \pi $$ ## Solution by [[Invariance Principle]] What can be varied here is the relative sizes of the two sets of squares. At each extreme, one pair of squares vanishes. Another useful configuration is when all four squares are the same size. +-- {.image} [[FourSquaresinaSemiCircleTwoSquares.png:pic]] =-- When two squares vanish, the length $8$ stretches across both remaining squares as the hypotenuse of the triangle $A B C$ in the above diagram. The remaining lengths, $A B$ and $B C$ are in the ratio $2 : 1$. The triangle $A C D$ is similar to $A B C$, with hypotenuse $A D$, so $C D$ is half of $A C$, which is $4$. Applying [[Pythagoras' Theorem]] to $A C D$ then $A D$, the diagonal of the semi-circle, is given by the square root of $8^2 + 4^2 = 80$. As the radius is half the diameter, its square is a quarter of the square of the diameter, and so is $20$. The area of the semi-circle is therefore: $$ \frac{\pi r^2}{2} = \frac{20 \pi}{2} = 10 \pi $$ +-- {.image} [[FourSquaresinaSemiCircleFourEqualSquares.png:pic]] =-- When all four squares are the same size, each must have side length of $2$. The centre of the circle is now at the lower common vertex of the middle two squares, and the length of a radius is the diagonal of the rectangle comprising two of the squares. As each square has side length $2$, [[Pythagoras' Theorem]] says that $$ r^2 = 2^2 + 4^2 = 20 $$ This gives the area as $$ \frac{20 \pi}{2} = 10\pi $$