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3 rooms are occupied by disease x, 4 by disease y, 2 rooms by disease z and 1 by disease a. What is the probability that a random room does not contain disease y?

3 rooms are occupied by disease x, 4 by disease y, 2 rooms by disease z and 1 by disease a. What is the probability that a random room does not contain disease y?
asked 79.6k views
4 votes
3 rooms are occupied by disease x, 4 by disease y, 2 rooms by disease z and 1 by disease a. What is the probability that a random room does not contain disease y?

asked
User Cantremember
by
7.8k points

2 Answers

4 votes

Answer:

6/10

Explanation:

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answered
User Jadusty
by
8.3k points
5 votes

Answer:

6/10

Explanation:

[P(x) + P(z) + P(a)]/P(all) = (3+2+1)/(3+4+2+1) = 6/10

answered
User Konstantin Svintsov
by
8.6k points
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