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Assume a normal distribution and that the average phone call in a certain town lasted 12 min with a standard deviation of 2 min What percentage of the calls lasted lessthan 10 min?
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Assume a normal distribution and that the average phone call in a certain town lasted 12 min with a standard deviation of 2 min What percentage of the calls lasted lessthan 10 min?

User Kennard
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Notice that:


P(x<10)=P(x>14)_{}=1-P(x\leq14)

Now, we use the formula for the z-score:


z=((14-12))/(2)=1

Then the percentage of the calls that lasted less than 10 min is 15.87%

User Richard Knife
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