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13 June, 19:32

Suppose a normal distribution has a mean of 38 and a standard deviation of 2. What is the probability that a data value is between 37 and 41? Round your answer to the nearest tenth of a percent.

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  1. 13 June, 22:33
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    P (37 < x < 41) = P (-0.5 < Z < 1.5) = 0.6247

    Step-by-step explanation:

    We know mean u = 38 standard dev. s = 2

    We want P (37 < x < 41)

    so

    P ((37 - 38) / 2 < Z) = P (-0.5 < Z)

    P (Z < (41 - 38) / 2) = P (Z < 1.5)

    Find P (Z < - 0.5) = 0.3085

    Find P (Z > 1.5) = 0.0668

    so P (-0.5 < Z < 1.5) = 1 - P (Z 1.5)

    P (-0.5 < Z < 1.5) = 1 - 0.3085 - 0.0668

    P (-0.5 < Z < 1.5) = 0.6247

    P (37 < x < 41) = P (-0.5 < Z < 1.5) = 0.6247
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