Introduction of Empirical Topology in Construction of Relationship Networks of Informative Objects
Abstract
Understanding the structure of relationships between
objects in a given database is one of the most important problems in the
field of data mining. The structure can be defined for a set of single
objects (clustering) or a set of groups of objects (network mapping). We
propose a method for discovering relationships between individuals
(single or groups) that is based on what we call the empirical topology,
a system-theoretic measure of functional proximity. To illustrate the
suitability and efficiency of the method, we apply it to an astronomical
data base.
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