1 Answer

Mustafa Chelik · Answer 1 · 2020-08-25T10:19:05+0000

Answer: 0.1

Explanation:

Let F = must stop at first signal .

F’ = do not have to stop at first signal .

S = must stop at second signal .

S’ = do not have to stop at second signal.

As given , we have

P(F)=0.40

P(S)=0.50

P(F∪S)=0.60

Use formula ,
$P(F\cap S)=P(F)+P(S)-P(F\cup S)$

i.e.
$P(F\cap S)=0.40+0.50-0.60=0.30$

The probability that she must stop at the first signal but not the second signal :

$P(F\cap S')=P(F)-P(F\cap S)=0.40-0.30=0.10$

Hence, the probability that she must stop at the first signal but not the second signal= 0.1

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