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Research PaperResearchia:202609.10031

Risk-Averse Decision Making via Quantum Measurement Design

Meiyi Zhu

Abstract

Quantum measurements are conventionally optimized to maximize the average of a utility that depends on the true state and on the measurement outcome. However, when the outcome of the measurement is used as an action within a larger decision-making system, the average utility does not capture the risk of poor outcomes. This letter addresses the design of quantum measurements that maximize a risk-averse objective given by the optimized certainty equivalent (OCE), a family of criteria that includes...

Submitted: September 10, 2026Subjects: Engineering; Chemical Engineering

Description / Details

Quantum measurements are conventionally optimized to maximize the average of a utility that depends on the true state and on the measurement outcome. However, when the outcome of the measurement is used as an action within a larger decision-making system, the average utility does not capture the risk of poor outcomes. This letter addresses the design of quantum measurements that maximize a risk-averse objective given by the optimized certainty equivalent (OCE), a family of criteria that includes the average utility and the conditional value at risk (CVaR) as special cases. For a piecewise linear gain function, defining the OCE, thus including the CVaR, the problem is shown to reduce to a finite number of semidefinite programs, for which a dual formulation is derived. For the discrimination of two states, a closed-form solution is obtained that takes the form of a Helstrom measurement. Numerical results show that the optimized measurement improves the lower tail of the utility distribution at a moderate cost in average utility.


Source: arXiv:2609.10482v1 - http://arxiv.org/abs/2609.10482v1 PDF: https://arxiv.org/pdf/2609.10482v1 Original Link: http://arxiv.org/abs/2609.10482v1

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Date:
Sep 10, 2026
Topic:
Chemical Engineering
Area:
Engineering
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