DocumentCode :
3259355
Title :
Context-Aware Visual Exploration of Molecular Datab
Author :
Di Fatta, Giuseppe ; Fiannaca, Antonino ; Rizzo, Riccardo ; Urso, Alfonso ; Berthold, Michael R. ; Gaglio, Salvatore
Author_Institution :
Sch. of Syst. Eng., Reading Univ.
fYear :
2006
fDate :
Dec. 2006
Firstpage :
136
Lastpage :
141
Abstract :
Facilitating the visual exploration of scientific data has received increasing attention in the past decade or so. Especially in life science related application areas the amount of available data has grown at a breath taking pace. In this paper we describe an approach that allows for visual inspection of large collections of molecular compounds. In contrast to classical visualizations of such spaces we incorporate a specific focus of analysis, for example the outcome of a biological experiment such as high throughout screening results. The presented method uses this experimental data to select molecular fragments of the underlying molecules that have interesting properties and uses the resulting space to generate a two dimensional map based on a singular value decomposition algorithm and a self-organizing map. Experiments on real datasets show that the resulting visual landscape groups molecules of similar chemical properties in densely connected regions
Keywords :
biology computing; data visualisation; molecular biophysics; scientific information systems; self-organising feature maps; singular value decomposition; classical visualizations; context-aware visual exploration; life science; molecular databases; scientific data; self-organizing map; singular value decomposition; visual inspection; visual landscape groups molecules; Chemical compounds; Councils; Data engineering; Data mining; Data visualization; Drugs; High temperature superconductors; Information science; Systems engineering and theory; Visual databases;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Data Mining Workshops, 2006. ICDM Workshops 2006. Sixth IEEE International Conference on
Conference_Location :
Hong Kong
Print_ISBN :
0-7695-2702-7
Type :
conf
DOI :
10.1109/ICDMW.2006.51
Filename :
4063613
Link To Document :
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