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TRIPROBE: Probing Task Separability Beyond Classification for XAI

Published 17 Sept 2026arXiv:2609.18525

data quality89

Updated 24 h ago · first seen 17 Sept 2026

paper_01M2Q5C6VSEECJM165V3CZ0BBD

Abstract

Modern evaluation of learning pipelines often reduces to downstream accuracy, leaving open the question of why tasks succeed or fail. TriProbe addresses this gap with a multi-level probing framework for explainable diagnosis of task separability. Rather than treating models as black boxes, TriProbe traces how separability evolves across inputs, learned features, and final classifiers. It decomposes multi-task problems into binary subtasks and applies three complementary probes: a Foundational Probe on input spaces, a Latent Probe on feature representations, and a Final Probe on classifier outputs. Using Maximum Fisher's Discriminant Ratio as a principled separability metric, TriProbe identifies bottlenecks and affected task pairs. Experiments on the Roshambo sEMG benchmark show how TriProbe reveals hidden breakdowns, guiding data collection, validation, and architecture design.

Authors

Authors 5

Aleksa Bok\v{s}anAmirhossein SadoughFreek HensMahyar ShahsavariMohammad Mahdi Dehshibi

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arXiv (Atom API + RSS)rss.arxiv.org/rss/cs.AI feedT1· Official3 h ago8
arXiv (Atom API + RSS)rss.arxiv.org/rss/cs.LG feedT1· Official3 h ago7

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