Exercise
Nov 20'23
Answer
Let [math]Y[/math] indicate the nominal value of the two-year bond, then: [math]9465=\frac{0.05 Y}{1.08}+\frac{1.05 Y}{1.08^2}[/math], so [math]Y=10,000[/math].
Thus, the amount of liability at the end of the second year is 10,500 . Hence, the liability at the end of the first year is:
[[math]]
\frac{10,500}{2}=5250
[[/math]]
So, the amount invested in the one-year bond is:
[[math]]
\frac{5250-10,000(0.05)}{1.06}=4481 \text {. }
[[/math]]
Copyright 2023 . The Society of Actuaries, Schaumburg, Illinois. Reproduced with permission.