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43 votes
43 votes
Suppose family incomes in a town are normally distributed with a mean of P25000 and a standard deviation of P6000 per month. What is the probability that a family has an income between P14,000 and P32,500?

User Jmegaffin
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1 Answer

26 votes
26 votes

The formula for the Z-score is,


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

Given:


\begin{gathered} x_1=P14,000,x_2=P32,500 \\ \mu=P25,000,\sigma=P6000 \end{gathered}

Therefore,


\begin{gathered} Z_1=(14000-25000)/(6000)=-1.83333 \\ Z_2=(32500-25000)/(6000)=1.25 \end{gathered}

Hence, the probability will be


P(Z_1<strong>Therefore, the answer is</strong>[tex]\begin{equation*} 0.86097 \end{equation*}

User Shafiqul
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