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Using Visual Analytics to Interpret Predictive Machine Learning Models

17 June 2016
Josua Krause
Adam Perer
E. Bertini
    HAI
ArXiv (abs)PDFHTML
Abstract

It is commonly believed that increasing the interpretability of a machine learning model may decrease its predictive power. However, inspecting input-output relationships of those models using visual analytics, while treating them as black-box, can help to understand the reasoning behind outcomes without sacrificing predictive quality. We identify a space of possible solutions and provide two examples of where such techniques have been successfully used in practice.

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