manta - a clustering algorithm for weighted ecological networks
Creators
- 1. 1KU Leuven, Department of Microbiology, Immunology and Transplantation, Rega Institute, Laboratory of Molecular Bacteriology, Leuven, Belgium
Description
Microbial network inference and analysis has become a successful approach to generate biological hypotheses from microbial sequencing data. Network clustering is a crucial step in this analysis. Here, we present a novel heuristic flow-based network clustering algorithm, which equals or outperforms existing algorithms on noise-free synthetic data and performs well when a large percentage of the data are shuffled. manta comes with
unique strengths such as the ability to identify nodes that represent an intermediate between clusters,
to exploit negative edges and to assess the robustness of cluster membership. We demonstrate in two case studies how these properties help to gain a better understanding of the microbial community under study. manta does not require parameter tuning, is straightforward to install and run, and can easily be combined with existing microbial network inference tools. We therefore expect it to be useful in a wide range of microbial network applications.
This repository contains an archived version of manta, in addition to all scripts and raw data used for the manuscript.
Notes
Files
manta_supplements.zip
Files
(1.3 MB)
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