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Towards Stable Machine Learning Model Retraining via Slowly Varying Sequences

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arxiv 2403.19871 v5 pith:FSYVPLZC submitted 2024-03-28 cs.LG cs.AImath.OC

classification cs.LGcs.AImath.OC
keywords modelsretrainingacrossmodelpredictiveanalyticalframeworkiterations
verification ladder T0 review T1 audit T2 compute T3 formal
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We consider the problem of retraining machine learning (ML) models when new batches of data become available. Existing approaches greedily optimize for predictive power independently at each batch, without considering the stability of the model's structure or analytical insights across retraining iterations. We propose a model-agnostic framework for finding sequences of models that are stable across retraining iterations. We develop a mixed-integer optimization formulation that is guaranteed to recover Pareto optimal models (in terms of the predictive power-stability trade-off) with good generalization properties, as well as an efficient polynomial-time algorithm that performs well in practice. We focus on retaining consistent analytical insights-which is important to model interpretability, ease of implementation, and fostering trust with users-by using custom-defined distance metrics that can be directly incorporated into the optimization problem. We evaluate our framework across models (regression, decision trees, boosted trees, and neural networks) and application domains (healthcare, vision, and language), including deployment in a production pipeline at a major US hospital. We find that, on average, a 2% reduction in predictive power leads to a 30% improvement in stability.

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Cited by 2 Pith papers

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  1. A Six-Dimensional Taxonomy of Post-Training Adaptation Techniques with Applications in AI Governance

    cs.LG 2026-08 conditional novelty 6.0 of 10

    A new taxonomy characterizes 48 post-training AI adaptation techniques on six axes and maps them to regulatory documentation requirements.

  2. The Challenger: When Do New Data Sources Justify Switching Machine Learning Models?

    cs.LG 2025-12 conditional novelty 5.0 of 10

    Under a power-law learning curve, the optimal time to switch to a challenger model grows as T^{1/(1+alpha)}, and a look-ahead sequential algorithm empirically approaches an oracle with O(T^{2/3} sqrt(log T)) regret.

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