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Titlebook: Bisociative Knowledge Discovery; An Introduction to C Michael R. Berthold Book‘‘‘‘‘‘‘‘ 2012 The Editor(s) (if applicable) and the Author(s)

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Simplification of Networks by Edge Pruningion of a network, to extract its main structure, or as a pre-processing step for other data mining algorithms..We define a graph connectivity function based on the best paths between all pairs of nodes. Given the number of edges to be pruned, the problem is then to select a subset of edges that best
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Finding Representative Nodes in Probabilistic Graphs BisoNets. We define a probabilistic similarity measure for nodes, and then apply clustering methods to find groups of nodes. Finally, a representative is output from each cluster. We report on experiments with real biomedical data, using both the .-medoids and hierarchical clustering methods in the
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Node Similarities from Spreading Activationses on the overlap of direct and indirect neighbors. The second similarity compares nodes based on the structure of their possibly also very distant neighborhoods. Both similarities are derived from spreading activation patterns over time. Whereas in the first method the activation patterns are dire
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Exploration: Overviewnd diverse methods for network analysis have been proposed (Part III). All these methods provide powerful means in order to obtain different insights into the properties of huge information networks or graphs. However, one disadavantage of these individual approaches is that each approach provides o
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Lehrbuch der Kinderheilkunde vononal) databases, text document collections and the like. As a consequence, we need, as an initial step, methods that construct a network representation by analyzing tabular and textual data, in order to identify entities that can serve as nodes and to extract relevant relationships that should be represented by edges.
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