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  2. Propensity score matching - Wikipedia

    en.wikipedia.org/wiki/Propensity_score_matching

    2. Match each participant to one or more nonparticipants on propensity score, using one of these methods: Nearest neighbor matching; Optimal full matching: match each participants to unique non-participant(s) so as to minimize the total distance in propensity scores between participants and their matched non-participants.

  3. Matching (statistics) - Wikipedia

    en.wikipedia.org/wiki/Matching_(statistics)

    Matching is a statistical technique that evaluates the effect of a treatment by comparing the treated and the non-treated units in an observational study or quasi-experiment (i.e. when the treatment is not randomly assigned).

  4. Probability matching - Wikipedia

    en.wikipedia.org/wiki/Probability_matching

    Probability matching is a decision strategy in which predictions of class membership are proportional to the class base rates.Thus, if in the training set positive examples are observed 60% of the time, and negative examples are observed 40% of the time, then the observer using a probability-matching strategy will predict (for unlabeled examples) a class label of "positive" on 60% of instances ...

  5. Template:Infobox YouTube personality - Wikipedia

    en.wikipedia.org/wiki/Template:Infobox_YouTube...

    An infobox for a YouTube personality or channel. Template parameters [Edit template data] This template has custom formatting. Parameter Description Type Status Honorific prefix honorific_prefix honorific prefix Honorific prefix(es), to appear above the YouTube personality's name. Example [[Sir]] Line optional Name name The name of the YouTube personality or channel. String suggested Honorific ...

  6. Inverse probability weighting - Wikipedia

    en.wikipedia.org/wiki/Inverse_probability_weighting

    An alternative estimator is the augmented inverse probability weighted estimator (AIPWE) combines both the properties of the regression based estimator and the inverse probability weighted estimator. It is therefore a 'doubly robust' method in that it only requires either the propensity or outcome model to be correctly specified but not both.

  7. Matching pursuit - Wikipedia

    en.wikipedia.org/wiki/Matching_pursuit

    Matching pursuit should represent the signal by just a few atoms, such as the three at the centers of the clearly visible ellipses. Matching pursuit (MP) is a sparse approximation algorithm which finds the "best matching" projections of multidimensional data onto the span of an over-complete (i.e., redundant) dictionary .

  8. Matching law - Wikipedia

    en.wikipedia.org/wiki/Matching_law

    The matching law, and the generalized matching law, have helped behavior analysts to understand some complex human behaviors, especially the behavior of children in certain conflict situations. [ 10 ] [ 11 ] James Snyder and colleague have found that response matching predicts the use of conflict tactics by children and parents during conflict ...

  9. Chou–Fasman method - Wikipedia

    en.wikipedia.org/wiki/Chou–Fasman_method

    The Chou–Fasman method predicts helices and strands in a similar fashion, first searching linearly through the sequence for a "nucleation" region of high helix or strand probability and then extending the region until a subsequent four-residue window carries a probability of less than 1.

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