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Tobias Wittkop

Transitivity Clustering


Clustering biological data by unraveling hidden transitive substructures
2010. 148 S. 220 mm
Verlag/Jahr: SÜDWESTDEUTSCHER VERLAG FÜR HOCHSCHULSCHRIFTEN 2010
ISBN: 3-8381-1654-2 (3838116542)
Neue ISBN: 978-3-8381-1654-9 (9783838116549)

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Clustering is a computational technique for the assignment of objects into groups of similar elements. Generally, it is widely used for business data interpretation, natural language analyses, and image processing. Typical bioinformatic applications are the detection of homologous proteins and the identification of co-expressed genes. Here, we introduce Transitivity Clustering and its accompanying software framework TransClust, a homogeneous data partitioning method based on Weighted Transitive Graph Projection. It aims for unraveling hidden transitive substructures in a given similarity graph deduced from a pairwise similarity measure. Transitivity Clustering is an efficient technique that is capable of processing hundreds of thousands of data points while still being robust against outliers and noise. A single, intuitive density parameter determines the number and the size of the clusters; with provable attributes. In addition, we present extensions of the underlying graph model in order to create hierarchies and overlaps, as well as comparisons against alternative clustering approaches and real-world application cases.
Following his Diploma studies in mathemetics at Bielefeld University, Tobias Wittkop received in 2010 a PhD in bioinformatics from the Center for Biotechnology (CeBiTec) at Bielefeld University, Germany. Currently he works as postdoctoral researcher at the Buck Institute for Age Research in Novato, California, USA.