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Temperature monitoring during tissue freezing using ultrasound speed measurements

机译:使用超声速度测量来监测组织冻结期间的温度

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A major limitation of thermal therapies is the lack of detailed thermal information needed to monitor the therapy. Temperatures are routinely measured invasively with thermocouples, but only sparse measurements can be made. Ultrasound tomography is an attractive modality for temperature monitoring because it is non-invasive, non-ionizing, convenient and inexpensive. It capitalizes on the fact that the changes in temperature cause the changes in sound speed. In this work we investigate the possibility of monitoring large temperature changes, in the interval from body temperature to -40°C. The ability to estimate temperature in this interval is of a great importance in cryosurgery, where freezing is used to destroy abnormal tissue. In our experiment, we freeze locally a tissue-mimicking phantom using a combination of one, two or three cryoprobes. The estimation of sound speed is a difficult task because, first, the sound is highly attenuated when traversing the frozen tissue; and second, the sound speed to be reconstructed has a high spatial bandwidth, due to the dramatic change in speed between the frozen and unfrozen tissue. We show that the first problem can be overcome using a beamforming technique. As the classical reconstruction algorithms inherently smooth the reconstruction, we propose to solve the second problem by applying reconstruction techniques based on sparsity.
机译:热疗法的主要局限性在于缺乏监测疗法所需的详细热信息。通常使用热电偶侵入性地测量温度,但只能进行稀疏测量。超声层析成像是一种温度监测的有吸引力的方式,因为它是非侵入性的,非电离的,方便且便宜的。它利用了温度变化引起声速变化的事实。在这项工作中,我们研究了在从体温到-40°C的时间间隔内监视大温度变化的可能性。在此期间,估计温度的能力在冷冻手术中非常重要,在冷冻手术中,冷冻被用于破坏异常组织。在我们的实验中,我们结合使用一,两个或三个冷冻棒来局部冻结模仿组织的模型。估计声速是一项艰巨的任务,因为,首先,在穿越冷冻组织时,声音会大大衰减。其次,由于冷冻组织和未冷冻组织之间的速度急剧变化,因此要重建的声速具有较高的空间带宽。我们证明了使用波束成形技术可以克服第一个问题。由于经典的重建算法固有地使重建平滑,因此我们建议通过应用基于稀疏性的重建技术来解决第二个问题。

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