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Large-scale Testing Global Optimization Methods with Black-box Adversarial Attacks

Authors

Do you know Wojciech Zarzecki?You can claim authorship or link another user.Do you know Jarosław Arabas?You can claim authorship or link another user.

Abstract

Existing global optimization benchmark suites are of a moderate size and are based on a small number of analytical functions that date back even to the 1970s. This causes a risk of biasing the development of global optimization methods. We argue that the tasks related to the black-box adversarial attack (BBAA) can serve as valuable global optimization benchmark in many-dimensional space. We demonstrate the efficiency of several types of evolutionary algorithms and other metaheuristics in solving example BBAA problems. Thus, we take a step towards convergence of global optimization methods to the challenges and needs that arise in the modern machine learning field.

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Publication notes

Author note
Accepted to PPSN 2026