Homework Soursequality control If the probability density of a random varia
quality control
If the probability density of a random variable is given by f(x) = {k(1 -x^2) for 0 Solution
a)
Normalizing,
Integral [k(1-x^2) dx]|(0,1) = 1
k(x - x^3/3)|(0,1) = 1
k(2/3) = 1
k = 3/2 or 1.5 [ANSWER]
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b)
Thus, the cumulative distribution function here is
P(X<x) = F(x) = 1.5(x - x^3/3) , 0<x<1
0 , elsewhere
Thus,
P(0.1<x<0.2) = F(0.2) - F(0.1) = 1.5*(0.2 - 0.2^3/3) - 1.5*(0.1 - 0.1^3/3)
P(0.1<x<0.2) = 0.1465 [ANSWER]
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c)
P(x>0.5) = 1 - F(0.5) = 1 - 1.5*(0.5 - 0.5^3/3)
= 0.3125 [ANSWER]
![quality control If the probability density of a random variable is given by f(x) = {k(1 -x^2) for 0 Solutiona) Normalizing, Integral [k(1-x^2) dx]|(0,1) = 1 k(x](/WebImages/32/quality-control-if-the-probability-density-of-a-random-varia-1091205-1761574614-0.webp "quality control If the probability density of a random variable is given by f(x) = {k(1 -x^2) for 0 Solutiona) Normalizing, Integral [k(1-x^2) dx]|(0,1) = 1 k(x")
