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Variational simulation of higher-spin systems on qubit-based quantum simulators

  • Physical Review Research
  • American Physical Society
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Qubit-based quantum simulators naturally target two-level systems, whereas many quantum many-body problems are intrinsically <a:math xmlns:a="http://www.w3.org/1998/Math/MathML"> <a:mi>d</a:mi> </a:math> level. Encodings from qudits to qubits then enlarge the Hilbert space and can introduce unphysical states that interfere with variational optimization. We formulate a variational framework for encoded <b:math xmlns:b="http://www.w3.org/1998/Math/MathML"> <b:mi>d</b:mi> </b:math> -level models that suppresses these illegitimate states with penalty terms and benchmark it for spin-1 and spin-3/2 bilinear-biquadratic Heisenberg chains. We compare binary encoding, which minimizes the qubit overhead, with symmetry encoding, which preserves the relevant spin symmetries and enables symmetry-conserving ansätze. Although binary encoding is more qubit efficient, its hardware-efficient ansatz is harder to train and less effective at exploiting conserved quantities. In contrast, symmetry encoding requires more qubits but reaches substantially higher fidelities, converges faster, and exhibits better trainability than the binary hardware-efficient ansatz. These results identify symmetry-preserving encodings as a practical route to simulating higher-spin models on existing qubit platforms.

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Publication details

DOI
10.1103/lfc9-cjqd
OpenAlex
W4396816987
Document type
article
Language
EN
Source
Physical Review Research
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