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Mercator: a pipeline for multi-method, unsupervised visualization and distance generation
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Abstract
Summary
Unsupervised machine learning provides tools for researchers to uncover latent patterns in large-scale data, based on calculated distances between observations. Methods to visualize high-dimensional data based on these distances can elucidate subtypes and interactions within multi-dimensional and high-throughput data. However, researchers can select from a vast number of distance metrics and visualizations, each with their own strengths and weaknesses. The Mercator R package facilitates selection of a biologically meaningful distance from 10 metrics, together appropriate for binary, categorical and continuous data, and visualization with 5 standard and high-dimensional graphics tools. Mercator provides a user-friendly pipeline for informaticians or biologists to perform unsupervised analyses, from exploratory pattern recognition to production of publication-quality graphics.
Availabilityand implementation
Mercator is freely available at the Comprehensive R Archive Network (https://cran.r-project.org/web/packages/Mercator/index.html).
Oxford University Press (OUP)
Title: Mercator: a pipeline for multi-method, unsupervised visualization and distance generation
Description:
Abstract
Summary
Unsupervised machine learning provides tools for researchers to uncover latent patterns in large-scale data, based on calculated distances between observations.
Methods to visualize high-dimensional data based on these distances can elucidate subtypes and interactions within multi-dimensional and high-throughput data.
However, researchers can select from a vast number of distance metrics and visualizations, each with their own strengths and weaknesses.
The Mercator R package facilitates selection of a biologically meaningful distance from 10 metrics, together appropriate for binary, categorical and continuous data, and visualization with 5 standard and high-dimensional graphics tools.
Mercator provides a user-friendly pipeline for informaticians or biologists to perform unsupervised analyses, from exploratory pattern recognition to production of publication-quality graphics.
Availabilityand implementation
Mercator is freely available at the Comprehensive R Archive Network (https://cran.
r-project.
org/web/packages/Mercator/index.
html).
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