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Variational quantum algorithms (VQAs) have demonstrated great potentials in the Noisy Intermediate Scale Quantum (NISQ) era.
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2020
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T. Tomesh, K. Gui, P. Gokhale, Y. Shi, F. T. Chong, M. Martonosi, and M. Suchara, “Optimized quantum program execution ordering to mitigate errors in simulations of quantum systems,” in 2021 International Conference on Rebooting Computing (ICRC) . IEEE, 2021, pp. 1–13
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2022
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P. Das, C. A. Pattison, S. Manne, D. M. Carmean, K. M. Svore, M. Qureshi, and N. Delfosse, “Afs: Accurate, fast, and scalable error-decoding for fault-tolerant quantum computers,” in 2022 IEEE International Symposium on High-Performance Computer Architecture (HPCA) . IEEE, 2022, pp. 259–273
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Y. Du, T. Huang, S. You, M.-H. Hsieh, and D. Tao, “Quantum circuit architecture search for variational quantum algorithms,” npj Quantum Information , vol. 8, no. 1, pp. 1–8, 2022
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J. Herrmann, S. M. Llima, A. Remm, P. Zapletal, N. A. McMahon, C. Scarato, F. Swiadek, C. K. Andersen, C. Hellings, S. Krinner et al. , “Realizing quantum convolutional neural networks on a superconducting quantum processor to recognize quantum phases,” Nature Communications , vol. 13, no. 1, pp. 1–7, 2022
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H. Wang, Y. Ding, J. Gu, Y. Lin, D. Z. Pan, F. T. Chong, and S. Han, “Quantumnas: Noise-adaptive search for robust quantum circuits,” in 2022 IEEE International Symposium on High-Performance Computer Architecture (HPCA) . IEEE, 2022, pp. 692–708
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“Ibm debuts next-generation quantum processor & ibm quantum system two, extends roadmap to advance era of quantum utility,” https://newsroom.ibm.com/2023-12-04-IBM-Debuts-Next-Generation-Quantum-Processor-IBM-Quantum-System-Two,-Extends-Roadmap-to-Advance-Era-of-Quantum-Utility
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D. Bluvstein, S. J. Evered, A. A. Geim, S. H. Li, H. Zhou, T. Manovitz, S. Ebadi, M. Cain, M. Kalinowski, D. Hangleiter et al. , “Logical quantum processor based on reconfigurable atom arrays,” Nature , pp. 1–3, 2023
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