Cape Town - 2026 ISMRM-ISMRT Annual Meeting and Exhibition
9 May 2026 – 14 May 2026 · Cape Town, South Africa
569-02-001 ISMRM Abstract

A First Attempt at Solving the Bloch Equations on Quantum Computers

Accepted
José E Cruz Serrallés 1, Oluwadara Ogunkoya2,3, Doga Kurckuoglu2,3, Silvia Zorzetti2,3, Riccardo Lattanzi1,4
1Center for Biomedical Imaging, Department of Radiology, New York University Grossman School of Medicine, New York, United States of America
2Superconducting and Quantum Materials System Center (SQMS), Batavia, United States of America
3Fermi National Accelerator Laboratory, Batavia, United States of America
4Center for Advanced Imaging Innovation and Research (CAI²R), New York University Grossman School of Medicine, New York, United States of America
Presenting Author: José E Cruz Serrallés

Synopsis

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References

1. Quantitative Magnetic Resonance Imaging. Edited by Nicole Seiberlich, Vikas Gulani, Fernando Calamante, Adrienne Campbell-Washburn, Mariya Doneva, Houchun Harry Hu, Steven Sourbron. Volume 1. Academic Press, 2020, 1092 pages. ISBN 9780128170588.
2. Keenan KE, Biller JR, Delfino JG, Boss MA, Does MD, Evelhoch JL, Griswold MA, Gunter JL, Hinks RS, Hoffman SW, Kim G, Lattanzi R, Li X, Marinelli L, Metzger GJ, Mukherjee P, Nordstrom RJ, Peskin AP, Perez E, Russek SE, Sahiner B, Serkova N, Shukla-Dave A, Steckner M, Stupic KF, Wilmes LJ, Wu HH, Zhang H, Jackson EF and Sullivan DC, Recommendations Towards Standards for Quantitative MRI (qMRI) and Outstanding Needs; Journal of Magnetic Resonance Imaging, vol 49(7), 2019, p. e26-e39.
3. Ma D, Gulani V, Seiberlich N, Liu K, Sunshine JL, Duerk JL, Griswold MA. Magnetic resonance fingerprinting. Nature. 2013;495(7440):187-192. doi:10.1038/nature11971. [doi]
4. Markidis S, What is Quantum Parallelism, Anyhow?, ISC High Performance 2024 Research Paper Proceedings (39th International Conference), Hamburg, Germany, 2024, pp. 1-12, doi: 10.23919/ISC.2024.10528926. [doi]
5. Cruz Serrallés JE, Ogunkoya O, Kürkçüog̃lu DM, Bornman N, Tubman NM, Grassellino A, Zorzetti S and Lattanzi R, Efficient Floating-Point Arithmetic on Fault-Tolerant Quantum Computers. Preprint on arXiv. 2025. doi: 10.48550/arXiv.2510.20145. [doi]
6. Jordan, Stephen P., et al. Automated design of pulse sequences for magnetic resonance fingerprinting using physics-inspired optimization. Proceedings of the National Academy of Sciences 118.40 (2021): e2020516118.

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