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  2. Random variable - Wikipedia

    en.wikipedia.org/wiki/Random_variable

    When the image (or range) of is finitely or infinitely countable, the random variable is called a discrete random variable [5]: 399 and its distribution is a discrete probability distribution, i.e. can be described by a probability mass function that assigns a probability to each value in the image of .

  3. Blackwell-Girshick equation - Wikipedia

    en.wikipedia.org/wiki/Blackwell-Girshick_equation

    The Blackwell-Girshick equation is an equation in probability theory that allows for the calculation of the variance of random sums of random variables. [1] It is the equivalent of Wald's lemma for the expectation of composite distributions. It is named after David Blackwell and Meyer Abraham Girshick.

  4. Realization (probability) - Wikipedia

    en.wikipedia.org/wiki/Realization_(probability)

    In more formal probability theory, a random variable is a function X defined from a sample space Ω to a measurable space called the state space. [ 2 ] [ a ] If an element in Ω is mapped to an element in state space by X , then that element in state space is a realization.

  5. Probability theory - Wikipedia

    en.wikipedia.org/wiki/Probability_theory

    Central subjects in probability theory include discrete and continuous random variables, probability distributions, and stochastic processes (which provide mathematical abstractions of non-deterministic or uncertain processes or measured quantities that may either be single occurrences or evolve over time in a random fashion). Although it is ...

  6. Wald's equation - Wikipedia

    en.wikipedia.org/wiki/Wald's_equation

    Wald's equation can be transferred to R d-valued random variables (X n) n∈ by applying the one-dimensional version to every component. If (X n) n∈ are Bochner-integrable random variables taking values in a Banach space, then the general proof above can be adjusted accordingly.

  7. Probability distribution - Wikipedia

    en.wikipedia.org/wiki/Probability_distribution

    Discrete probability distribution: for many random variables with finitely or countably infinitely many values. Probability mass function (pmf): function that gives the probability that a discrete random variable is equal to some value. Frequency distribution: a table that displays the frequency of various outcomes in a sample.

  8. Probability-generating function - Wikipedia

    en.wikipedia.org/wiki/Probability-generating...

    In probability theory, the probability generating function of a discrete random variable is a power series representation (the generating function) of the probability mass function of the random variable. Probability generating functions are often employed for their succinct description of the sequence of probabilities Pr(X = i) in the ...

  9. Law of the unconscious statistician - Wikipedia

    en.wikipedia.org/wiki/Law_of_the_unconscious...

    In probability theory and statistics, the law of the unconscious statistician, or LOTUS, is a theorem which expresses the expected value of a function g(X) of a random variable X in terms of g and the probability distribution of X. The form of the law depends on the type of random variable X in question.