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23 February, 16:33

the triglyceride levels of residents of an assisted living facility are recordered the levels are normally distributed with a mean of 200 and a standard deviation of 50. if a resident is randomly selected, find the probability of a level that is between 200 and 275

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  1. 23 February, 16:43
    0
    The probability is 0.4332.

    Explanation:

    Mean = μ = 200

    Standard deviation = σ = 50

    We are required to find the probability that a randomly selected resident has a triglyceride level between 200 and 275. That is,

    P (200 < X < 275) = ?

    We are further informed that the triglyceride levels are normally distributed. We, therefore, convert it into standard normal distribution (Z-distribution), and compute it as follows.

    P (200 < X < 275)

    = P [ (200 - 200) / 50 < (X - μ) / σ < (275 - 200) / 50]

    = P (0 < Z < 1.5)

    = P (Z < 1.5) - P (Z < 0)

    = 0.9332 - 0.5

    = 0.4332

    Therefore, the probability that a randomly selected resident has a triglyceride level between 200 and 275 is 0.4332.
  2. 23 February, 17:00
    0
    Step-by-step explanation:

    P (200
    P (200-200/50
    P (0/50
    P (0
    P (X0)

    0.9332-0.5 = 0.4332
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