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Updated: Aug 21, 2025

Novel Sequence Discovery by Subtractive Genomics
Published on: January 25, 2019
metaMIC: reference-free misassembly identification and correction of de novo metagenomic assemblies
Senying Lai1, Shaojun Pan1, Chuqing Sun2
1Institute of Science and Technology for Brain-Inspired Intelligence, Fudan University, Shanghai, China.
Abstract:
Evaluating the quality of metagenomic assemblies is important for constructing reliable metagenome-assembled genomes and downstream analyses. Here, we present metaMIC ( https://github.com/ZhaoXM-Lab/metaMIC ), a machine learning-based tool for identifying and correcting misassemblies in metagenomic assemblies. Benchmarking results on both simulated and real datasets demonstrate that metaMIC outperforms existing tools when identifying misassembled contigs. Furthermore, metaMIC is able to localize the misassembly breakpoints, and the correction of misassemblies by splitting at misassembly breakpoints can improve downstream scaffolding and binning results.
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