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Explanation Shift: Detecting distribution shifts on tabular data via the explanation space

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arxiv 2210.12369 v1 pith:GYMD4ESY submitted 2022-10-22 cs.LG cs.AIstat.ML

classification cs.LGcs.AIstat.ML
keywords explanationshiftsdistributionperformancepredictivedataindicatormodel
verification ladder T0 review T1 audit T2 compute T3 formal
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As input data distributions evolve, the predictive performance of machine learning models tends to deteriorate. In the past, predictive performance was considered the key indicator to monitor. However, explanation aspects have come to attention within the last years. In this work, we investigate how model predictive performance and model explanation characteristics are affected under distribution shifts and how these key indicators are related to each other for tabular data. We find that the modeling of explanation shifts can be a better indicator for the detection of predictive performance changes than state-of-the-art techniques based on representations of distribution shifts. We provide a mathematical analysis of different types of distribution shifts as well as synthetic experimental examples.

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  1. Delta-Audit: Explaining What Changes When Models Change

    cs.LG 2025-08 conditional novelty 4.0 of 10

    Delta-Attribution subtracts two models' feature-attribution vectors to audit what changed in a model update, evaluated across 45 settings with a new quality suite.

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