DocumentCode :
3549319
Title :
Precedence temporal networks from gene expression data
Author :
Sacchi, Lucia ; Bellazzi, Riccardo ; Porreca, Riccardo ; Larizza, Cristiana ; Magni, Paolo
Author_Institution :
Dipt. di Inf. e Sistemistica, Pavia Univ., Italy
fYear :
2005
fDate :
23-24 June 2005
Firstpage :
109
Lastpage :
114
Abstract :
In this paper we introduce a novel method to extract from data and graphically represent the temporal relationships between events, called precedence temporal network. The new approach first derives events from time series by exploiting the temporal abstraction technique, then derives temporal precedence between abstractions in terms of association rules and finally expresses the relationships as a labeled graph. The method is applied to the problem of representing the temporal behavior of gene expressions, as they are collected by DNA microarrays. In particular, in this paper we present the results obtained from the analysis of the expression of a subset of the genes involved in cell-cycle regulation.
Keywords :
DNA; biochemistry; biology computing; cellular biophysics; genetics; molecular biophysics; temporal databases; time series; DNA microarrays; association rules; cell-cycle regulation; data extraction; expression analysis; gene expression data; gene expression temporal behavior; genes subset; graphical represention; labeled graph; precedence temporal network; precedence temporal networks; temporal abstraction technique; time series; Association rules; Bioinformatics; DNA; Data analysis; Data mining; Gene expression; Genomics; Measurement techniques; Neoplasms; Proteins;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Computer-Based Medical Systems, 2005. Proceedings. 18th IEEE Symposium on
ISSN :
1063-7125
Print_ISBN :
0-7695-2355-2
Type :
conf
DOI :
10.1109/CBMS.2005.83
Filename :
1467676
Link To Document :
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