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Photo-magnetic imaging: Resolving optical contrast at MRI resolution

机译:光电成像:以MRI分辨率解决光学对比

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摘要

In this paper, we establish the mathematical framework of a novel imaging technique, namely photo-magnetic imaging (PMI). PMI uses a laser to illuminate biological tissues and measure the induced temperature variations using magnetic resonance imaging (MRI). PMI overcomes the limitation of conventional optical imaging and allows imaging of the optical contrast at MRI spatial resolution. The image reconstruction for PMI, using a finite-element-based algorithm with an iterative approach, is presented in this paper. The quantitative accuracy of PMI is investigated for various inclusion sizes, depths and absorption values. Then, a comparison between conventional diffuse optical tomography (DOT) and PMI is carried out to illustrate the superior performance of PMI. An example is presented showing that two 2 mm diameter inclusions embedded 4.5 mm deep and located side by side in a 25 mm diameter circular geometry medium are recovered as a single 6 mm diameter object with DOT. However, these two objects are not only effectively resolved with PMI, but their true concentrations are also recovered successfully.
机译:在本文中,我们建立了一种新型成像技术的数学框架,即光磁成像(PMI)。 PMI使用激光照亮生物组织并使用磁共振成像(MRI)测量诱导的温度变化。 PMI克服了常规光学成像的局限性,并允许以MRI空间分辨率成像光学对比。提出了一种基于有限元算法的PMI图像迭代重建方法。针对各种夹杂物尺寸,深度和吸收值,对PMI的定量精度进行了研究。然后,比较了常规漫射光学层析成像(DOT)和PMI,以说明PMI的卓越性能。给出了一个示例,该示例显示了以4.5 mm深并排并排放置在25 mm直径圆形几何介质中的两个2​​ mm直径的夹杂物,作为带有DOT的单个6 mm直径的对象被回收。但是,这两个对象不仅可以通过PMI有效解决,而且还可以成功地恢复其真实浓度。

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