Answer:
0.095 or 9.5%
Step-by-step explanation:
Puncture → P(P) = 0.06
Smashed corner → P(S) = 0.04
Puncture and smashed corner → P(P and S) = 0.005
The probability that a randomly selected carton has a puncture or a smashed corner is given by the probability of a puncture, added to the probability of a smashed corner, subtracted by the probability of both:
[tex]P(P\ or\ S) =P(P)+P(S) - P(P\ and\ S)\\P(P\ or\ S) =0.06+0.04-0.005\\P(P\ or\ S) =0.095=9.5\%[/tex]
The probability is 0.095 or 9.5%.
