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A statistical model is used in applied statistics. Three basic notions are sufficient to describe all statistical models.
In mathematical terms, a statistical model is frequently thought of as a parameterized set of probability distributions of the form
It is assumed that there is a distinct element in the above set from which the observed data are generated. Statistical inference is the art of making statements about which elements of this set are likely to be the true one.
So, for example, Bayes theorem in its raw form may be intractable, but assuming a general model H allows it to become
which may be easier. Models can also be compared using measures such as Bayes factors or mean square error.
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