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Assume a normal distribution and that the average phone call in a certain town lasted 4 min, with a standard deviation of 1 min. What percentage of the calls lasted lessthan 3 min?eBooks/eResourcesPeopleWhat percentage of calls last less than 3 min?

User Nachospiu
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1 Answer

22 votes
22 votes

First, we need to find the z-score usign the next formula


z=(x-\mu)/\sigma

x is the score

μ is the mean

σ is the standard deviation

In our case

The mean (μ) = 4

The standard division (σ )= 1

The calls lasted less than (x)=3

we substitute the values


z=(3-4)/(1)=-1

the with tables we can find the probability for the value of z given


P(x<3)=0.15866*100\text{\%=15.87\%}=16\text{\%}

percentage of the calls that lasted less than 3 min is 15.87% approximately 16%

User Adlorem
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