A firm offers routine physical examinations as part of a health service program for its employees. The exams showed that 14% of the employees needed corrective shoes, 21% needed…

Question

asked Apr 21, 2022 134k views

1 Answer

Qingchen · Answer 1 · 2022-04-27T17:48:36+0000

Answer:

0.32 = 32% probability that an employee selected at random will need either corrective shoes or major dental work.

Explanation:

We solve this question treating these events as Venn probabilities.

I am going to say that:

Event A: Needing corrective shoes.

Event B: Needing major dental work.

14% of the employees needed corrective shoes

This means that
P(A) = 0.14

21% needed major dental work

This means that
P(B) = 0.21

3% needed both corrective shoes and major dental work.

This means that
$P(A \cap B) = 0.03$

What is the probability that an employee selected at random will need either corrective shoes or major dental work?

This is:

$P(A \cup B) = P(A) + P(B) - P(A \cap B)$

So, from the values given by the exercise:

$P(A \cup B) = 0.14 + 0.21 - 0.03 = 0.32$

0.32 = 32% probability that an employee selected at random will need either corrective shoes or major dental work.