Connecting phases of matter to the flatness of the loss landscape in analog variational quantum algorithms

June 16, 2025 Β· Declared Dead Β· πŸ› arXiv.org

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Authors Kasidit Srimahajariyapong, Supanut Thanasilp, Thiparat Chotibut arXiv ID 2506.13865 Category quant-ph: Quantum Computing Cross-listed cond-mat.dis-nn, cs.LG, cs.NE, stat.ML Citations 4 Venue arXiv.org Last Checked 5 months ago
Abstract
Variational quantum algorithms (VQAs) promise near-term quantum advantage, yet parametrized quantum states commonly built from the digital gate-based approach often suffer from scalability issues such as barren plateaus, where the loss landscape becomes flat. We study an analog VQA ansΓ€tze composed of $M$ quenches of a disordered Ising chain, whose dynamics is native to several quantum simulation platforms. By tuning the disorder strength we place each quench in either a thermalized phase or a many-body-localized (MBL) phase and analyse (i) the ansΓ€tze's expressivity and (ii) the scaling of loss variance. Numerics shows that both phases reach maximal expressivity at large $M$, but barren plateaus emerge at far smaller $M$ in the thermalized phase than in the MBL phase. Exploiting this gap, we propose an MBL initialisation strategy: initialise the ansΓ€tze in the MBL regime at intermediate quench $M$, enabling an initial trainability while retaining sufficient expressivity for subsequent optimization. The results link quantum phases of matter and VQA trainability, and provide practical guidelines for scaling analog-hardware VQAs.
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