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Three married couples have purchased theater tickets and are seated in a row consisting of just six seats. If they take their seats in a completely random fashion (random order)…

Three married couples have purchased theater tickets and are seated in a row consisting of just six seats. If they take their seats in a completely random fashion (random order)…
asked 114k views
2 votes
Three married couples have purchased theater tickets and are seated in a row consisting of just six seats. If they take their seats in a completely random fashion (random order), what is the probability that Jim and Paula (husband and wife) sit in the two seats on the far left?

asked
User Nick Burke
by
8.7k points

1 Answer

3 votes

Answer:

The required probability is :
(1)/(15)

Explanation:

Three married couples have purchased theater tickets and are seated in a row consisting of just six seats.

First we will check the total arrangements that is 6! ways.

6! =
6*5*4*3*2*1=720

Jim and Paula can sit at far left in 2 ways and the remaining 4 in 4! ways,.

So, probability will be =
2*(4!)/(6!)

=
2*(24)/(720)

=
(48)/(720)

=
(1)/(15)

answered
User Vinod Maurya
by
7.9k points
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