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TANQ-Sim: Tensorcore Accelerated Noisy Quantum System Simulation via QIR on Perlmutter HPC

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arxiv 2404.13184 v2 pith:NI37DTF2 submitted 2024-04-19 quant-ph cs.ET

classification quant-phcs.ET
keywords quantumsimulationtanq-simcomputingproposesimulatenoisecommunication
verification ladder T0 review T1 audit T2 compute T3 formal
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Although there have been remarkable advances in quantum computing (QC), it remains crucial to simulate quantum programs using classical large-scale parallel computing systems to validate quantum algorithms, comprehend the impact of noise, and develop resilient quantum applications. This is particularly important for bridging the gap between near-term noisy-intermediate-scale-quantum (NISQ) computing and future fault-tolerant quantum computing (FTQC). Nevertheless, current simulation methods either lack the capability to simulate noise, or simulate with excessive computational costs, or do not scale out effectively. In this paper, we propose TANQ-Sim, a full-scale density matrix based simulator designed to simulate practical deep circuits with both coherent and non-coherent noise. To address the significant computational cost associated with such simulations, we propose a new density-matrix simulation approach that enables TANQ-Sim to leverage the latest double-precision tensorcores (DPTCs) in NVIDIA Ampere and Hopper GPUs. To the best of our knowledge, this is the first application of double-precision tensorcores for non-AI/ML workloads. To optimize performance, we also propose specific gate fusion techniques for density matrix simulation. For scaling, we rely on the advanced GPU-side communication library NVSHMEM and propose effective optimization methods for enhancing communication efficiency. Evaluations on the NERSC Perlmutter supercomputer demonstrate the functionality, performance, and scalability of the simulator. We also present three case studies to showcase the practical usage of TANQ-Sim, including teleportation, entanglement distillation, and Ising simulation. TANQ-Sim will be released on GitHub.

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Cited by 2 Pith papers

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  1. Coupled Cluster Downfolding Theory in Simulations of Chemical Systems on Quantum Hardware

    quant-ph 2025-07 accept novelty 5.0 of 10

    A coupled-cluster downfolding pipeline (QRDR) computes effective Hamiltonians in small active spaces and solves them with quantum algorithms, recovering about 98% of CCSD(T) correlation energy for benzene and free-bas...

  2. GPU-Accelerated Distributed QAOA on Large-scale HPC Ecosystems

    cs.DC 2025-06 conditional novelty 4.0 of 10

    GPU-accelerated DQAOA with impact-factor based decomposition runs up to 10x faster than CPU simulations on Frontier, with better scaling up to 160 devices.

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