Genetic algorithm-based optimization of pulse sequences.

Vencel Somai, Felix Kreis, Adam Gaunt, Anastasia Tsyben, Ming Li Chia, Friederike Hesse, Alan J Wright, Kevin M Brindle

Journal: Magnetic resonance in medicine 2022;87(5):2130-2144

PMID: 34866238

Abstract

PURPOSE

The performance of pulse sequences in vivo can be limited by fast relaxation rates, magnetic field inhomogeneity, and nonuniform spin excitation. We describe here a method for pulse sequence optimization that uses a stochastic numerical solver that in principle is capable of finding a global optimum. The method provides a simple framework for incorporating any constraint and implementing arbitrarily complex cost functions. Efficient methods for simulating spin dynamics and incorporating frequency selectivity are also described.

METHODS

Optimized pulse sequences for polarization transfer between protons and X-nuclei and excitation pulses that eliminate J-coupling modulation were evaluated experimentally using a surface coil on phantoms, and also the detection of hyperpolarized [2- C]lactate in vivo in the case of J-coupling modulation-free excitation.

RESULTS

The optimized polarization transfer pulses improved the SNR by ~50% with a more than twofold reduction in the B field, and J-coupling modulation-free excitation was achieved with a more than threefold reduction in pulse length.

CONCLUSION

This process could be used to optimize any pulse when there is a need to improve the uniformity and frequency selectivity of excitation as well as to design new pulses to steer the spin system to any desired achievable state.

© 2021 The Authors. Magnetic Resonance in Medicine published by Wiley Periodicals LLC on behalf of International Society for Magnetic Resonance in Medicine.

Address: Cancer Research UK Cambridge Institute, University of Cambridge, Cambridge, United Kingdom.; Department of Radiology, School of Clinical Medicine, University of Cambridge, Cambridge, United Kingdom.; Institute for Biomedical Engineering, University of Zurich and ETH Zurich, Zurich, Switzerland.; Department of Biochemistry, University of Cambridge, Cambridge, United Kingdom.

Link outs

Bant logo

© Copyright 2026, Nutrition Evidence

NED wishes to thank the following organisations for their support:

We use cookies to improve your experience and analyze site traffic with Google Analytics. By continuing to use our site, you agree to our use of cookies. Learn more.