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A More Convex Ising Formulation of Max-3-Cut Using Higher-Order Spin Interactions

Statistical Mechanics 2025-08-06 v2 Mathematical Physics math.MP Adaptation and Self-Organizing Systems Cellular Automata and Lattice Gases Applied Physics

Abstract

Many combinatorial optimization problems (COPs) are naturally expressed using variables that take on more than two discrete values. To solve such problems using Ising machines (IMs) - specialized analog or digital devices designed to solve COPs efficiently - these multi-valued integers must be encoded using binary spin variables. A common approach is one-hot encoding, where each variable is represented by a group of spins constrained so that exactly one spin is in the "up" state. However, this encoding introduces energy barriers: changing an integer's value requires flipping two spins and passing through an invalid intermediate state. This creates rugged energy landscapes that may hinder optimization. We propose a higher-order Ising formulation for Max-3-Cut, which is the smallest fundamental COP with multi-valued integer variables. Our formulation preserves valid configurations under single-spin updates. The resulting energy landscapes are smoother, and we show that this remains true even when the binary variables are relaxed to continuous values, making it well-suited for analog IMs as well. Benchmarking on such an IM, we find that the higher-order formulation leads to significantly faster solutions than the Ising baseline. Interestingly, we find that an empirical rescaling of some terms in the Ising formulation - a heuristic proposed in prior work - approaches the performance of the higher-order Ising formulation, underscoring the importance of empirical parameter tuning in COP encodings.

Keywords

Cite

@article{arxiv.2508.00565,
  title  = {A More Convex Ising Formulation of Max-3-Cut Using Higher-Order Spin Interactions},
  author = {Robbe De Prins and Guy Van der Sande and Peter Bienstman and Thomas Van Vaerenbergh},
  journal= {arXiv preprint arXiv:2508.00565},
  year   = {2025}
}

Comments

11 pages, 8 figures, including appendices

R2 v1 2026-07-01T04:29:20.802Z