Proof: Mode of the exponential distribution
Index:
The Book of Statistical Proofs ▷
Probability Distributions ▷
Univariate continuous distributions ▷
Exponential distribution ▷
Mode
Metadata: ID: P51 | shortcut: exp-mode | author: kantundpeterpan | date: 2020-02-12, 15:53.
Theorem: Let $X$ be a random variable following an exponential distribution:
\[\label{eq:exp} X \sim \mathrm{Exp}(\lambda) \; .\]Then, the mode of $X$ is
\[\label{eq:exp-mode} \mathrm{mode}(X) = 0 \; .\]Proof: The mode is the value which maximizes the probability density function:
\[\label{eq:mode} \mathrm{mode}(X) = \operatorname*{arg\,max}_x f_X(x) \; .\]The probability density function of the exponential distribution is:
\[\label{eq:exp-pdf} f_X(x) = \left\{ \begin{array}{rl} 0 \; , & \text{if} \; x < 0 \\ \lambda e^{-\lambda x} \; , & \text{if} \; x \geq 0 \; . \end{array} \right.\]Since
\[\label{eq:exp-pdf-eq0} f_X(0) = \lambda\]and
\[\label{eq:exp-pdf-neq0} 0 < e^{-\lambda x} < 1 \quad \text{for any} \quad x > 0 \; ,\]it follows that
\[\label{eq:exp-mode-qed} \mathrm{mode}(X) = 0 \; .\]∎
Sources: Metadata: ID: P51 | shortcut: exp-mode | author: kantundpeterpan | date: 2020-02-12, 15:53.