A driver’s reaction time to brake lights on a decelerating vehicle can be modeled with a...
A driver’s reaction time to brake lights on a decelerating vehicle can be modeled with a normal distribution where the mean is 1.25 seconds and the standard deviation is 0.4 seconds. (e) About 68% of the reaction times lie between what two values (use the original parameters)?
Homework Answers
solution
Given that,
mean = 
= 1.25
standard deviation = 
=0.4
middle 68% of score is
P(-z < Z < z) = 0.68
P(Z < z) - P(Z < -z) = 0.68
2 P(Z < z) - 1 = 0.68
2 P(Z < z) = 1 + 0.68 = 1.68
P(Z < z) = 1.68 / 2 = 0.84
P(Z < 0.99) = 0.84
z ± 0.99 using z table
Using z-score formula
x= z *
+
x= ± 0.99 *0.4+1.25
x= 0.854 ,1.646
68% of the reaction times lie between 0.854 to 1.646
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