AI Article Synopsis

  • Brain signals are recorded using various techniques, but these signals often contain artefacts from internal and external sources that hinder accurate analysis and must be removed for sound conclusions.
  • Machine learning (ML) methods have proven effective in detecting and eliminating these artefacts, but the growing number of published articles complicates the selection of the best approach for specific experiments.
  • To address this issue, the paper introduces ABOT (Artefact removal Benchmarking Online Tool), an online platform that allows users to compare different ML methods for artefact detection and removal, featuring a comprehensive knowledgebase and adhering to FAIR principles by providing open-access source code and documentation.

Article Abstract

Brain signals are recorded using different techniques to aid an accurate understanding of brain function and to treat its disorders. Untargeted internal and external sources contaminate the acquired signals during the recording process. Often termed as artefacts, these contaminations cause serious hindrances in decoding the recorded signals; hence, they must be removed to facilitate unbiased decision-making for a given investigation. Due to the complex and elusive manifestation of artefacts in neuronal signals, computational techniques serve as powerful tools for their detection and removal. Machine learning (ML) based methods have been successfully applied in this task. Due to ML's popularity, many articles are published every year, making it challenging to find, compare and select the most appropriate method for a given experiment. To this end, this paper presents ABOT (Artefact removal Benchmarking Online Tool) as an online benchmarking tool which allows users to compare existing ML-driven artefact detection and removal methods from the literature. The characteristics and related information about the existing methods have been compiled as a knowledgebase (KB) and presented through a user-friendly interface with interactive plots and tables for users to search it using several criteria. Key characteristics extracted from over 120 articles from the literature have been used in the KB to help compare the specific ML models. To comply with the FAIR (Findable, Accessible, Interoperable and Reusable) principle, the source code and documentation of the toolbox have been made available via an open-access repository.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9437165PMC
http://dx.doi.org/10.1186/s40708-022-00167-3DOI Listing

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