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  1. Outputs

Robust Conclusions in Mass Spectrometry Analysis

Conference Paper
Publication Date:
2015
Short description:
(2015). Robust Conclusions in Mass Spectrometry Analysis [conference presentation - intervento a convegno]. In PROCEDIA COMPUTER SCIENCE. Retrieved from http://hdl.handle.net/10446/56016
abstract:
A central issue in biological data analysis is that uncertainty, resulting from different factors of variability, may change the effect of the events being investigated. Therefore, robustness is a fundamental step to be considered. Robustness refers to the ability of a process to cope well with uncertainties, but the different ways to model both the processes and the uncertainties lead to many alternative conclusions in the robustness analysis. In this paper we apply a framework allowing to deal with such questions for mass spectrometry data. Specifically, we provide robust decisions when testing hypothesis over a case/control population of subject measurements (i.e. proteomic profiles). To this concern, we formulate (i) a reference model for the observed data (i.e., graphs), (ii) a reference method to provide decisions (i.e., test of hypotheses over graph properties) and (iii) a reference model of variability to employ sources of uncertainties (i.e., random graphs). We apply these models to a realcase study, analyzing the mass spectrometry profiles of the most common type of Renal Cell Carcinoma; the Clear Cell variant.
Iris type:
1.4.01 Contributi in atti di convegno - Conference presentations
List of contributors:
Zoppis, Italo; Dondi, Riccardo; Borsani, Massimiliano; Gianazza, Erica; Chinello, Clizia; Magni, Fulvio; Mauri, Giancarlo
Authors of the University:
DONDI Riccardo
Handle:
https://aisberg.unibg.it/handle/10446/56016
Full Text:
https://aisberg.unibg.it/retrieve/handle/10446/56016/75444/ICCS2015.pdf
Book title:
International Conference On Computational Science, ICCS 2015 Computational Science at the Gates of Nature
Published in:
PROCEDIA COMPUTER SCIENCE
Journal
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