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A smoothing monotonic convergent optimal control algorithm for nuclear magnetic resonance pulse sequence design

机译:核磁共振脉冲序列设计的平滑单调收敛最优控制算法

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摘要

The past decade has demonstrated increasing interests in using optimal control based methods within coherent quantum controllable systems. The versatility of such methods has been demonstrated with particular elegance within nuclear magnetic resonance(NMR) where natural separation between coherent and dissipative spin dynamics processes has enabled coherent quantum control over long periods of time to shape the experiment to almost ideal adoption to the spin system and external manipulations. This has led to new design principles as well as powerful new experimental methods within magnetic resonance imaging, liquid-state and solid-state NMR spectroscopy. For this development to continue and expand, it is crucially important to constantly improve the underlying numerical algorithms to provide numerical solutions which are optimally compatible with implementation on current instrumentation and at same time are numerically stable and offer fast monotonic convergence toward the target. Addressing such aims, we here present a smoothing monotonically convergent algorithm for pulse sequencedesign in magnetic resonance which with improved optimization stability lead to smooth pulse sequence easier to implement experimentally and potentially understand within the analytical framework of modern NMR spectroscopy.
机译:在过去的十年中,在相干量子可控系统中使用基于最优控制的方法表现出了越来越高的兴趣。这种方法的多功能性在核磁共振(NMR)中表现得淋漓尽致,其中相干和耗散自旋动力学过程之间的自然分离已使长时间的相干量子控制成为可能,从而使实验定型为几乎理想地应用于自旋系统和外部操纵。这导致了磁共振成像,液态和固态NMR光谱领域的新设计原理以及强大的新实验方法。为了使这种发展得以继续和扩展,至关重要的是不断改进基础的数值算法,以提供与当前仪器的实现最佳兼容的数值解决方案,同时数值稳定且向目标提供快速单调收敛。为了实现这些目标,我们在这里提出了一种用于磁共振中脉冲序列设计的平滑单调收敛算法,该算法具有改进的优化稳定性,使得平滑脉冲序列更易于在实验中实现,并有可能在现代NMR光谱分析框架内得到理解。

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