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http://dr.iiserpune.ac.in:8080/xmlui/handle/123456789/11283| Title: | Mapping of fermionic lattice models for Ising solvers |
| Authors: | Nagpal, Lakshya KUMAR, ADITYA Hassan, S. R. Dept. of Physics |
| Keywords: | Mathematics and computing Physics 2026-JUN-WEEK2 TOC-JUN-2026 2026 |
| Issue Date: | May-2026 |
| Publisher: | Springer Nature |
| Citation: | Scientific Reports, 16, 16249. |
| Abstract: | We present an end-to-end, symmetry-aware pipeline that converts interacting fermionic and quantum-spin models into annealer-ready QUBOs while preserving low-energy physics. The workflow combines Bravyi–Kitaev encoding, exact symmetry tapering, Xia–Bian–Kais (XBK) diagonalization to a Z-only form, and local quadratization, with ground energies recovered via a Dinkelbach fixed-point over the resulting Ising objective. We validate the approach across a complexity ladder: (i) a frustrated 2D Ising model run on a D-Wave Advantage QPU reproduces the known ferromagnet–stripe transition; (ii) finite-temperature checks on 1D Ising recover standard finite-size trends; (iii) a genuinely quantum spin target (XXZ) matches exact diagonalization (ED) on small chains; and (iv) interacting fermions (t–V) in 1D (rings ) show ED-level energies and the expected kink near , with a 2D cluster tracking ED slopes up to a uniform offset. A replication-factor study quantifies the accuracy–overhead trade-off, with -of-magnitude error reduction by and diminishing returns beyond Except for the classical Ising benchmark and Molecular benchmarks, experiments use D-Wave’s public DIMOD and Neal simulators; a molecular benzene case in the appendix illustrates portability beyond lattices. The results establish a practical pathway for mapping quantum matter to current annealers, with clear knobs for fidelity, resources, and embedding. |
| URI: | https://doi.org/10.1038/s41598-026-44886-7 http://dr.iiserpune.ac.in:8080/xmlui/handle/123456789/11283 |
| ISSN: | 2045-2322 |
| Appears in Collections: | JOURNAL ARTICLES |
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