WAEC - Mathematics (1990 - No. 31)

In the diagram above PS||RQ, |RQ| = 6.4cm and perpendicular PH = 3.2cm. Find the area of SQR

5.12cm²

9.60cm²

10.24cm²

20.48cm²

40.96cm²

Area of a triangle = \(\frac{1}{2} \times b \times h\)

Area of \(\Delta\) SQR = \(\frac{1}{2} \times 6.4 \times 3.2\)

= 10.24 cm\(^2\)