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Tetris: A Compilation Framework for VQA Applications in Quantum Computing

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arxiv 2309.01905 v2 pith:CQYSRNID submitted 2023-09-05 quant-ph

classification quant-ph
keywords tetrisquantumqubitgatecircuitcompilationpercentalgorithms
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Quantum computing has shown promise in solving complex problems by leveraging the principles of superposition and entanglement. Variational quantum algorithms (VQA) are a class of algorithms suited for near term quantum computers due to their modest requirements of qubits and depths of computation. This paper introduces Tetris, a compilation framework for VQA applications on near term quantum devices. Tetris focuses on reducing two qubit gates in the compilation process since a two qubit gate has an order of magnitude more significant error and execution time than a single qubit gate. Tetris exploits unique opportunities in the circuit synthesis stage often overlooked by the state of the art VQA compilers for reducing the number of two qubit gates. Tetris comes with a refined IR of Pauli string to express such a two qubit gate optimization opportunity. Moreover, Tetris is equipped with a fast bridging approach that mitigates the hardware mapping cost. Overall, Tetris demonstrates a reduction of up to 41.3 percent in CNOT gate counts, 37.9 percent in circuit depth, and 42.6 percent in circuit duration for various molecules of different sizes and structures compared with the state-of-the-art approaches. Tetris is open-sourced at this link.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Genesis: A Compiler Framework for Hamiltonian Simulation on Hybrid CV-DV Quantum Computers

    quant-ph 2025-05 conditional novelty 6.0 of 10

    Genesis is a two-level compiler that decomposes fermion-boson Hamiltonians into hybrid CV-DV basis gates and maps them onto hardware with limited qubit-qumode connectivity.

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