Find the z-score that has 62.8% of the distribution’s area to its left

asked Mar 22, 2018 170k views

1 vote

by Knub

8.4k points

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2 votes

$\mathbb P(Z<z)=F_Z(z)=0.628\implies z={F_Z}^(-1)(0.628)\approx0.3266$

where
F_Z(z)

is the cumulative distribution function for the random variable

following the standard normal distribution.

Don Gilbert answered Mar 27, 2018

7.8k points

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