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20202026
most citedProtoVAE: A Trustworthy Self-Explainable Prototypical Variational Model

11 citations · 13 across the 9 of their papers we have counts for

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6 papers · 1 filter

cs.LG2025

Explaining deep learning for ECG using time-localized clusters

Ahcène Boubekki, Konstantinos Patlatzoglou, Joseph Barker +2

Deep learning has significantly advanced electrocardiogram (ECG) analysis, enabling automatic annotation, disease screening, and prognosis beyond traditional clinical capabilities.…

cs.LG2025

Supercm: Revisiting Clustering for Semi-Supervised Learning

Durgesh Singh, Ahcene Boubekki, Robert Jenssen +1

The development of semi-supervised learning (SSL) has in recent years largely focused on the development of new consistency regularization or entropy minimization approaches, often…

cs.LG2024

Explainable AI needs formalization

Stefan Haufe, Rick Wilming, Benedict Clark +4

The field of "explainable artificial intelligence" (XAI) seemingly addresses the desire that decisions of machine learning systems should be human-understandable. However, in its c…

cs.LG2024

EXACT: Towards a platform for empirically benchmarking Machine Learning model explanation methods

Benedict Clark, Rick Wilming, Artur Dox +11

The evolving landscape of explainable artificial intelligence (XAI) aims to improve the interpretability of intricate machine learning (ML) models, yet faces challenges in formalis…

cs.LG2023

Prototypical Self-Explainable Models Without Re-training

Srishti Gautam, Ahcene Boubekki, Marina M. C. Höhne +1

Explainable AI (XAI) has unfolded in two distinct research directions with, on the one hand, post-hoc methods that explain the predictions of a pre-trained black-box model and, on…

cs.LG202211 cited

ProtoVAE: A Trustworthy Self-Explainable Prototypical Variational Model

Srishti Gautam, Ahcene Boubekki, Stine Hansen +4

The need for interpretable models has fostered the development of self-explainable classifiers. Prior approaches are either based on multi-stage optimization schemes, impacting the…