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Longitudinal profiling of the microbiome at four body sites reveals core stability and individualized dynamics during health and disease
Longitudinal profiling of the microbiome at four body sites reveals core stability and individualized dynamics during health and disease
Multi-omics microsampling for the profiling of lifestyle-associated changes in health
Multi-omics microsampling for the profiling of lifestyle-associated changes in health
Deep learning-based pseudo-mass spectrometry imaging analysis for precision medicine
massDatabase utilities for the operation of the public compound and pathway database
TidyMass an object-oriented reproducible analysis framework for LC–MS data
Reproducibility, traceability, and transparency have been long-standing issues for metabolomics data analysis. Multiple tools have been developed, but limitations still exist. Here, we present the tidyMass project (https://www.tidymass.org/), a comprehensive R-based computational framework that can achieve the traceable, shareable, and reproducible workflow needs of data processing and analysis for LC-MS-based untargeted metabolomics. TidyMass is an ecosystem of R packages that share an underlying design philosophy, grammar, and data structure, which provides a comprehensive, reproducible, and object-oriented computational framework. The modular architecture makes tidyMass a highly flexible and extensible tool, which other users can improve and integrate with other tools to customize their own pipeline.