488,374 views
18 votes
18 votes
At Community Hospital, the nursing staff is large enough so that 80% of the time a nurse canrespond to a room call within three minutes. Last night there were 25 room calls. Find theprobability that nurses responded to 21 of the calls within three minutes.

User Ko Cour
by
2.6k points

1 Answer

6 votes
6 votes

This situation can be modeled by the binomial distribution, because there are two outcomes: a nurse can respond or a nurse cannot respond. The probability, p, that a nurse can respond is 0.8 (or 80%), the probability, q, that a nurse cannot respond is 0.2 (= 1 - 0.8). In 25 trials, we need that in 21 of them a nurse can respond.

The binomial distribution formula is:


P=_nC^{}_xp^xq^(n-x)

where xCn means number of combinations, n is the number of trials, x is number of times for a specific outcome within n trials, p is the probability of succes, and q is the probability of failure.

Substituting with n = 25, x = 21, p = 0.8 and q = 0.2, we get:


\begin{gathered} P=_(25)C_(21)\cdot0.8^(21)\cdot0.2^4 \\ P=12650\cdot0.8^(21)\cdot0.2^4 \\ P=0.19 \end{gathered}

User Huantao
by
3.1k points