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Consider a normal distribution of values with a mean of 32 and a standard deviation of 1.5. Find the probability that a value is less than 36.8.99.93%99.87%98.43%93.73%
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Consider a normal distribution of values with a mean of 32 and a standard deviation of 1.5. Find the probability that a value is less than 36.8.99.93%99.87%98.43%93.73%

User Marcos Carceles
by
3.8k points

1 Answer

5 votes

Finding Z:


Z=(x-\mu)/(\sigma)

Replacing the values given:


Z=(36.8-32)/(1.5)=3.2

Then...


P(X<36.8)=P(Z<3.2)

Using the Standard Normal Table, we can see that:


P(Z<3.2)=0.9993

Answer: 99.93%

User Garry English
by
4.5k points
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