In the following problem, check that it is appropriate to use the normal approximation to the binomial. Then use the normal distribution to

Question

In the following problem, check that it is appropriate to use the normal approximation to the binomial. Then use the normal distribution to estimate the requested probabilities. It is estimated that 3.7% of the general population will live past their 90th birthday. In a graduating class of 723 high school seniors, find the following probabilities. (Round your answers to four decimal places.)
(a) 15 or more will live beyond their 90th birthday
0.9846 x
(b) 30 or more will live beyond their 90th birthday
.2119
(c) between 25 and 35 will live beyond their 90th birthday
(d) more than 40 will live beyond their 90th birthday

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King 4 years 2021-08-11T08:10:28+00:00 1 Answers 115 views 0

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  1. kiet
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    2021-08-11T08:11:48+00:00
    Reply

    Answer:

    a) 0.9920 = 99.20% probability that 15 or more will live beyond their 90th birthday

    b) 0.2946  = 29.46% probability that 30 or more will live beyond their 90th birthday

    c) 0.6273 = 62.73% probability that between 25 and 35 will live beyond their 90th birthday

    d) 0.0034 = 0.34% probability that more than 40 will live beyond their 90th birthday

    Step-by-step explanation:

    We solve this question using the normal approximation to the binomial distribution.

    Binomial probability distribution

    Probability of exactly x sucesses on n repeated trials, with p probability.

    Can be approximated to a normal distribution, using the expected value and the standard deviation.

    The expected value of the binomial distribution is:

    E(X) = np

    The standard deviation of the binomial distribution is:

    \sqrt{V(X)} = \sqrt{np(1-p)}

    Normal probability distribution

    Problems of normally distributed distributions can be solved using the z-score formula.

    In a set with mean \mu and standard deviation \sigma, the zscore of a measure X is given by:

    Z = \frac{X - \mu}{\sigma}

    The Z-score measures how many standard deviations the measure is from the mean. After finding the Z-score, we look at the z-score table and find the p-value associated with this z-score. This p-value is the probability that the value of the measure is smaller than X, that is, the percentile of X. Subtracting 1 by the pvalue, we get the probability that the value of the measure is greater than X.

    When we are approximating a binomial distribution to a normal one, we have that \mu = E(X), \sigma = \sqrt{V(X)}.

    In this problem, we have that:

    Sample of 723, 3.7% will live past their 90th birthday.

    This means that n = 723, p = 0.037.

    So for the approximation, we will have:

    \mu = E(X) = np = 723*0.037 = 26.751

    \sigma = \sqrt{V(X)} = \sqrt{np(1-p)} = \sqrt{723*0.037*0.963} = 5.08

    (a) 15 or more will live beyond their 90th birthday

    This is, using continuity correction, P(X \geq 15 - 0.5) = P(X \geq 14.5), which is 1 subtracted by the pvalue of Z when X = 14.5. So

    Z = \frac{X - \mu}{\sigma}

    Z = \frac{14.5 - 26.751}{5.08}

    Z = -2.41

    Z = -2.41 has a pvalue of 0.0080

    1 – 0.0080 = 0.9920

    0.9920 = 99.20% probability that 15 or more will live beyond their 90th birthday

    (b) 30 or more will live beyond their 90th birthday

    This is, using continuity correction, P(X \geq 30 - 0.5) = P(X \geq 29.5), which is 1 subtracted by the pvalue of Z when X = 29.5. So

    Z = \frac{X - \mu}{\sigma}

    Z = \frac{29.5 - 26.751}{5.08}

    Z = 0.54

    Z = 0.54 has a pvalue of 0.7054

    1 – 0.7054 = 0.2946

    0.2946  = 29.46% probability that 30 or more will live beyond their 90th birthday

    (c) between 25 and 35 will live beyond their 90th birthday

    This is, using continuity correction, P(25 - 0.5 \leq X \leq 35 + 0.5) = P(X 24.5 \leq X \leq 35.5), which is the pvalue of Z when X = 35.5 subtracted by the pvalue of Z when X = 24.5. So

    X = 35.5

    Z = \frac{X - \mu}{\sigma}

    Z = \frac{35.5 - 26.751}{5.08}

    Z = 1.72

    Z = 1.72 has a pvalue of 0.9573

    X = 24.5

    Z = \frac{X - \mu}{\sigma}

    Z = \frac{24.5 - 26.751}{5.08}

    Z = -0.44

    Z = -0.44 has a pvalue of 0.3300

    0.9573 – 0.3300 = 0.6273

    0.6273 = 62.73% probability that between 25 and 35 will live beyond their 90th birthday.

    (d) more than 40 will live beyond their 90th birthday

    This is, using continuity correction, P(X > 40+0.5) = P(X > 40.5), which is 1 subtracted by the pvalue of Z when X = 40.5. So

    Z = \frac{X - \mu}{\sigma}

    Z = \frac{40.5 - 26.751}{5.08}

    Z = 2.71

    Z = 2.71 has a pvalue of 0.9966

    1 – 0.9966 = 0.0034

    0.0034 = 0.34% probability that more than 40 will live beyond their 90th birthday

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