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April 3, 2026Mathematics1 citationsOpen Access

Regime-Adaptive Conformal Calibration of Entropic Soft-Min Relaxations for Heterogeneous Optimization Problems

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JSJ. Ernesto SolanesAFAitana Francés-Falip

Key Points

  • The aim is to develop a method for selecting the inverse temperature in entropic soft-min relaxations to minimize approximation error in optimization tasks.
  • Studied the impact of the inverse temperature parameter on approximation fidelity.
  • Established monotonicity properties and bounds for relaxation error.
  • Introduced a calibration rule for optimal inverse temperature selection.
  • Performed numerical experiments in heterogeneous optimization settings.
  • The calibration method achieved accurate tracking of optimal inverse temperatures.
  • Showed near-target coverage in controlled settings.
  • Validated with numerical tests, demonstrating effective performance in adaptive scenarios.

Abstract

Entropic soft-min relaxations are widely used to obtain smooth approximations of minimum operators in optimization, machine learning, and control. The accuracy of this approximation is governed by an inverse temperature (or sharpness) parameter that controls the trade-off between smoothness and fidelity, yet its principled selection is typically heuristic. This work studies the data-driven calibration of the inverse temperature parameter governing the entropic soft-min relaxation, with explicit guarantees on the relaxation error between the soft-min operator and the infimum of the cost function. After establishing monotonicity properties and approximation bounds for the relaxation error, we introduce a conformal calibration rule that selects the smallest inverse temperature ensuring that the approximation error satisfies a prescribed tolerance with distribution-free finite-sample validity. The resulting selector adapts to the distribution of candidate cost-vector geometries represented in the calibration sample, enabling regime-specific inverse temperature selection in heterogeneous settings. Numerical experiments, including an adaptive cruise control application with safety filtering, show that the proposed method accurately tracks oracle calibration inverse temperatures and achieves near-target coverage in the exchangeable setting covered by the theory, while an additional shifted evaluation illustrates the role of this assumption.

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Cite This Study

Solanes et al. (2026) studied this question.

synapsesocial.com/papers/69cf5f005a333a821460dce4https://doi.org/10.3390/math14071188
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