Literature DB >> 29617783

A practical tool for maximal information coefficient analysis.

Davide Albanese1, Samantha Riccadonna1, Claudio Donati1, Pietro Franceschi1.   

Abstract

Background: The ability of finding complex associations in large omics datasets, assessing their significance, and prioritizing them according to their strength can be of great help in the data exploration phase. Mutual information-based measures of association are particularly promising, in particular after the recent introduction of the TICe and MICe estimators, which combine computational efficiency with superior bias/variance properties. An open-source software implementation of these two measures providing a complete procedure to test their significance would be extremely useful. Findings: Here, we present MICtools, a comprehensive and effective pipeline that combines TICe and MICe into a multistep procedure that allows the identification of relationships of various degrees of complexity. MICtools calculates their strength assessing statistical significance using a permutation-based strategy. The performances of the proposed approach are assessed by an extensive investigation in synthetic datasets and an example of a potential application on a metagenomic dataset is also illustrated. Conclusions: We show that MICtools, combining TICe and MICe, is able to highlight associations that would not be captured by conventional strategies.

Entities:  

Mesh:

Year:  2018        PMID: 29617783      PMCID: PMC5893960          DOI: 10.1093/gigascience/giy032

Source DB:  PubMed          Journal:  Gigascience        ISSN: 2047-217X            Impact factor:   6.524


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