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Efficient Optimization Of Mri Sampling Patterns Using The Bayesian Fisher Information Matrix

机译:使用贝叶斯渔业信息矩阵有效优化MRI采样模式

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This work proposes an efficient way to adapt MRI sampling patterns to a given anatomy and imaging context using a small set of representative training data. Such techniques were shown to help shorten MRI experiments while guaranteeing high image quality. An often encountered drawback of such methods are high computation times. We extend the recently proposed OEDIPUS framework by making use of the Bayesian Fisher information matrix. Based on the latter we devise an algorithm, which can be more than an order of magnitude faster than OEDIPUS for practical applications. This opens up the possibility to generate tailored sampling patterns for applications for which this would be infeasible otherwise. We evaluate our method in the context of multi-echo gradient echo imaging. The resulting sampling patterns show superior image reconstruction results compared to those obtained by other popularly used sampling schemes.
机译:这项工作提出了一种有效的方法,可以使用一小组代表训练数据将MRI采样模式调整到给定的解剖和成像语境。 显示这种技术有助于缩短MRI实验,同时保证高图像质量。 通常遇到的这些方法的缺点是高计算时间。 我们通过利用贝叶斯渔业信息矩阵来扩展最近提出的欧洲特区框架。 基于后者,我们设计了一种算法,其可以比实际应用更快的速度超过OEdip。 这使得能够为其产生的应用程序生成量身定制的采样模式,否则这将是不可行的。 我们在多回波梯度回显成像的背景下评估我们的方法。 得到的采样模式显示出与由其他普遍使用的采样方案获得的那些相比的卓越的图像重建结果。

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