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Theoretical Behavior of XAI Methods in the Presence of Suppressor Variables

1 Pith paper cite this work, alongside 8 external citations. Polarity classification is still indexing.

1 Pith paper citing it
8 external citations · Pith
abstract

In recent years, the community of 'explainable artificial intelligence' (XAI) has created a vast body of methods to bridge a perceived gap between model 'complexity' and 'interpretability'. However, a concrete problem to be solved by XAI methods has not yet been formally stated. As a result, XAI methods are lacking theoretical and empirical evidence for the 'correctness' of their explanations, limiting their potential use for quality-control and transparency purposes. At the same time, Haufe et al. (2014) showed, using simple toy examples, that even standard interpretations of linear models can be highly misleading. Specifically, high importance may be attributed to so-called suppressor variables lacking any statistical relation to the prediction target. This behavior has been confirmed empirically for a large array of XAI methods in Wilming et al. (2022). Here, we go one step further by deriving analytical expressions for the behavior of a variety of popular XAI methods on a simple two-dimensional binary classification problem involving Gaussian class-conditional distributions. We show that the majority of the studied approaches will attribute non-zero importance to a non-class-related suppressor feature in the presence of correlated noise. This poses important limitations on the interpretations and conclusions that the outputs of these XAI methods can afford.

fields

cs.LG 1

years

2025 1

verdicts

CONDITIONAL 1

representative citing papers

On Spectral Properties of Gradient-based Explanation Methods

cs.LG · 2025-08-14 · conditional · novelty 6.0

Gradient-based explanations behave like frequency-band selectors: the gradient acts as a high-pass filter, perturbation as a low-pass filter, and their combination creates explanations that shift with the perturbation scale.

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Showing 1 of 1 citing paper.

  • On Spectral Properties of Gradient-based Explanation Methods cs.LG · 2025-08-14 · conditional · none · ref 61 · internal anchor

    Gradient-based explanations behave like frequency-band selectors: the gradient acts as a high-pass filter, perturbation as a low-pass filter, and their combination creates explanations that shift with the perturbation scale.