Visual Data Mining in Intrinsic Hierarchical Complex Biodata: Novel Approaches for Analyzing Gene Expression Data in Biomedicine and Sequence Data in Metagenomics - Christian W. Martin - Grāmatas - Suedwestdeutscher Verlag fuer Hochschuls - 9783838109794 - 2009. gada 10. septembris
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Visual Data Mining in Intrinsic Hierarchical Complex Biodata: Novel Approaches for Analyzing Gene Expression Data in Biomedicine and Sequence Data in Metagenomics

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Complex biological data is characterized by a high dimensionality, multi-modality, missing values and noisiness, making its analysis a challenging task. Complex data consists of primary data - the core data - produced by a modern high-throughput technology, and secondary data, a collection of all kinds of respective supplementary data and background knowledge. Furthermore, biological data often has an intrinsic hierarchical structure, e.g. species in the Tree of Life. In this book, novel visual data mining approaches for the analysis of gene expression data in biomedicine and for sequence data in metagenomics are presented. To support the analysis of gene expression data, a Tree Index is developed for external validation of hierarchical clustering results and for correlation analysis between clustered primary data and external labels. To support visual inspection of the data, the REEFSOM ? a metaphoric data display - is adapted to integrate clustered gene expression data, clinical data and categorical data in one display. In the domain of metagenomics, a Self-Organizing Map classifier is developed in hyperbolic space to classify small variable-length DNA fragments.

Mediji Grāmatas     Paperback Book   (Grāmata ar mīksto vāku un līmēto muguru)
Izlaists 2009. gada 10. septembris
ISBN13 9783838109794
Izdevēji Suedwestdeutscher Verlag fuer Hochschuls
Lapas 156
Izmēri 150 × 220 × 10 mm   ·   250 g
Valoda Vācu  

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