Congratulations for your solutions to Hyeyoun Chung, age 17, St Paul's Girls' School, London; Royce Ferguson; Ang Zhi Ping, age 16; Yatir Halevi, age 17, Maccabim and Reut High-School, Israel; and Joe Nielson, Rowan Maclennon-Ryde and Elizabeth Brewster from Madras College, St Andrew's, Scotland.

The radius of the circle OA can be found by using the right triangle formed by AB = (1 + (√2)/2) and BO = (√2)/2). Using Pythagorus' theorem, the radius is found to be OA = √(2 +√2) units and the area of the circle to be π(2+ √2).

Now, connect the centre of the circle to the 8 points on it's circumference where the white meets red. This divides the white into circular sectors and quadrilaterals.

Using the cosine rule to find ∠AOD we have AC=CD=1 and so AD = √2 and hence

cos∠AOD =  OA2 + OD2 −AD2 2OA.OD =  1 √2 .

Hence ∠AOD = 45 degrees.

The area of the triangle AOD is

1 2 OA ×OD ×sin∠AOD =  √2 4 (2 + √2).

To find the area of the minor segment AD we subtract the area of triangle AOD from the area of sector AOD which gives

π 8 (2 + √2) −  √2 4 (2 + √2).

To get the total red shaded area we now add the area of triangle ACD and multiply by 4 which gives:

4[  π 8 (2 + √2) −  √2 4 (2 + √2)+  1 2 ]=  π 2 (2 + √2)− 2√2 ≈ 2.535  sq.  units .