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Information integration theory was proposed by Norman H. Anderson to describe and model how a person integrates information from a number of sources in order to make an overall judgment. The theory proposes three functions.
The valuation function is an empirically derived mapping of stimuli to an interval scale. It is unique up to an interval exchange transformation ().
The integration function is an algebraic function combining the subjective values of the information. "Cognitive algebra" refers to the class of functions that are used to model the integration process. They may be adding, averaging, weighted averaging, multiplying, etc.
The response production function is the process by which the internal impression is translated into an overt response.
Information integration theory differs from other theories in that it is not erected on a consistency principle such as balance or congruity but rather relies on algebraic models. The theory is also referred to as functional measurement, because it can provide validated scale values of the stimuli. An elementary treatment of the theory, along with a Microsoft Windows program for carrying out functional measurement analysis, is provided in the textbook by David J. Weiss. [1]
There are three main types of algebraic models used in information integration theory: adding, averaging, and multiplying.
Adding models
reaction/overt behavior
contributing factors
(Condition 1)
(Condition 2)
Typically an experiment is designed so that:
, and
, so that
.
There are two special cases known as discounting and augmentation.
Discounting: The value of any factor is reduced if other factors that produce the same effect are added.
Example: is not present or has a value of zero. If is positive, then G1 must be less than .
Augmentation: An inverse version of the typical model.
Example: If is negative, then must be greater than .
Two advantages of adding models:
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In theoretical physics and mathematics, a Wess–Zumino–Witten (WZW) model, also called a Wess–Zumino–Novikov–Witten model, is a type of two-dimensional conformal field theory named after Julius Wess, Bruno Zumino, Sergei Novikov and Edward Witten. A WZW model is associated to a Lie group, and its symmetry algebra is the affine Lie algebra built from the corresponding Lie algebra. By extension, the name WZW model is sometimes used for any conformal field theory whose symmetry algebra is an affine Lie algebra.
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