imputomics: web server and R package for missing values imputation in metabolomics data

Author:

Chilimoniuk Jarosław1ORCID,Grzesiak Krystyna12ORCID,Kała Jakub1ORCID,Nowakowski Dominik3ORCID,Krętowski Adam1ORCID,Kolenda Rafał45ORCID,Ciborowski Michał1ORCID,Burdukiewicz Michał16ORCID

Affiliation:

1. Clinical Research Centre, Medical University of Białystok , Białystok, Poland

2. Faculty of Mathematics and Computer Science, University of Wrocław , Wrocław, Poland

3. Department of Biostatistics and Medical Informatics, Medical University of Białystok , Białystok, Poland

4. Quadram Institute Biosciences, Norwich Research Park , Norwich, United Kingdom

5. Faculty of Veterinary Medicine, Wrocław University of Environmental and Life Sciences , Wrocław, Poland

6. Institute of Biotechnology and Biomedicine, Autonomous University of Barcelona , Cerdanyola del Vallès, Spain

Abstract

Abstract Motivation Missing values are commonly observed in metabolomics data from mass spectrometry. Imputing them is crucial because it assures data completeness, increases the statistical power of analyses, prevents inaccurate results, and improves the quality of exploratory analysis, statistical modeling, and machine learning. Numerous Missing Value Imputation Algorithms (MVIAs) employ heuristics or statistical models to replace missing information with estimates. In the context of metabolomics data, we identified 52 MVIAs implemented across 70 R functions. Nevertheless, the usage of those 52 established methods poses challenges due to package dependency issues, lack of documentation, and their instability. Results Our R package, ‘imputomics’, provides a convenient wrapper around 41 (plus random imputation as a baseline model) out of 52 MVIAs in the form of a command-line tool and a web application. In addition, we propose a novel functionality for selecting MVIAs recommended for metabolomics data with the best performance or execution time. Availability and implementation ‘imputomics’ is freely available as an R package (github.com/BioGenies/imputomics) and a Shiny web application (biogenies.info/imputomics-ws). The documentation is available at biogenies.info/imputomics.

Funder

National Science Centre

Medical University of Białystok

Publisher

Oxford University Press (OUP)

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