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Towards Evolutionary Optimization Using the Ising Model

Published: November 19, 2025 | arXiv ID: 2511.15377v1

By: Simon Klüttermann

Potential Business Impact:

Finds the best answer in tricky problems.

Business Areas:
Predictive Analytics Artificial Intelligence, Data and Analytics, Software

In this paper, we study the problem of finding the global minima of a given function. Specifically, we consider complicated functions with numerous local minima, as is often the case for real-world data mining losses. We do so by applying a model from theoretical physics to create an Ising model-based evolutionary optimization algorithm. Our algorithm creates stable regions of local optima and a high potential for improvement between these regions. This enables the accurate identification of global minima, surpassing comparable methods, and has promising applications to ensembles.

Country of Origin
🇩🇪 Germany

Repos / Data Links

Page Count
7 pages

Category
Computer Science:
Neural and Evolutionary Computing