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vivid: An R package for Variable Importance and Variable Interactions Displays for Machine Learning Models

Authors :
Inglis, Alan
Parnell, Andrew
Hurley, Catherine
Publication Year :
2022

Abstract

We present vivid, an R package for visualizing variable importance and variable interactions in machine learning models. The package provides a range of displays including heatmap and graph-based displays for viewing variable importance and interaction jointly and partial dependence plots in both a matrix layout and an alternative layout emphasizing important variable subsets. With the intention of increasing a machine learning models' interpretability and making the work applicable to a wider readership, we discuss the design choices behind our implementation by focusing on the package structure and providing an in-depth look at the package functions and key features. We also provide a practical illustration of the software in use on a data set.<br />Comment: 15 pages, 7 figures

Subjects

Subjects :
Statistics - Computation

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.2210.11391
Document Type :
Working Paper