Explaining high-dimensional text classifiers

Melamed, Odelia, Caruana, Rich

arXiv.org Machine Learning 

Explainability has become a valuable tool in the last few years, helping humans better understand AI-guided decisions. However, the classic explainability tools are sometimes quite limited when considering high-dimensional inputs and neural network classifiers. We present a new explainability method using theoretically proven high-dimensional properties in neural network classifiers.

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