Answer:
11.6 m
Step-by-step explanation:
First of all, we need to calculate the time of flight of the stone. This can be done by analyzing the horizontal motion only, which is a uniform motion with constant velocity
. The time of flight is:

where d = 5.4 m is the horizontal distance covered by the stone. Substituting,

Now we can analyze the vertical motion, which is a uniform accelerated motion with constant acceleration g = 9.8 m/s^2 downward. The vertical distance covered (which is the height of the bridge) is

where
u = 0 is the initial vertical velocity
t = 1.54 s is the time of flight
Substituting, we find
