) Consider the following probability density function of the random variable X. f(x) = k(2x + 3x2 ), 0 ≤ x ≤ 2. (i) Determine the value of the constant k.

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Piero Divasto asked Oct 10, 2023

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) Consider the following probability density function of the random variable X. f(x) = k(2x + 3x2 ), 0 ≤ x ≤ 2. (i) Determine the value of the constant k.

Mathematics
college

Piero Divasto asked Oct 10, 2023

by Piero Divasto

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I assume
f(x)=0 otherwise. If
f(x) is indeed a proper PDF, then its integral over the support of
is 1.

$\displaystyle \int_(-\infty)^\infty f(x) \, dx = k \int_0^2 (2x + 3x^2) \, dx = 1$

Compute the integral.

$\displaystyle \int_0^2 (2x + 3x^2) \, dx = (x^2 + x^3)\bigg|_(x=0)^(x=2) = (2^2 + 2^3) - (0^2 + 0^3) = 12$

Then

$12k = 1 \implies \boxed{k=\frac1{12}}$

Maktel answered Oct 14, 2023

by Maktel

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