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Impact of histology region size on measured dielectric properties of biological tissues

机译:组织学区域大小对测得的生物组织介电特性的影响

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Accurate knowledge of the dielectric properties of biological tissues is necessary for the design and development of electromagnetic medical technologies. Both electromagnetic diagnostic and therapeutic techniques depend heavily on the dielectric properties of the tissues in the region of interest. These properties quantify the accuracy and efficacy of systems, and enable realistic modelling and simulation prior to clinical evaluation. Despite these strong needs, the dielectric properties reported in the literature have suffered from significant inconsistencies. These inconsistencies have mainly been attributed to clinical confounders that have not historically been well-controlled. In this work, the sensing depth of the dielectric probe, a key clinical confounder, is investigated using heterogenous biological samples composed of porcine muscle and fat. Complex heterogeneous samples can contain several different types of tissues, which are identified through histology. When measuring the dielectric properties, it is crucial to know which tissues contribute to the measurements. In order to achieve this, a histology region is used, which enables correspondence between complex tissue samples and the measured dielectric properties. The histology region is given by the sensing depth in the longitudinal direction, and the sensing radius in the radial direction. We perform dielectric measurements on heterogenous samples and calculate the sensing depth of the dielectric probe for this measurement scenario. We then examine how errors in the assumed sensing depth value affect quantification of the tissue composition. This study demonstrates that the sensing depth, and thus the histology region, has a significant impact on how we interpret the dielectric properties of a sample, indicating that this region must be defined and measured with extreme care. With an improved understanding of these parameters, more accurate and repeatable dielectric measurements will be possible, thus facilitating the development of electromagnetic medical devices.
机译:对生物组织介电特性的准确了解对于电磁医疗技术的设计和开发是必需的。电磁诊断和治疗技术都在很大程度上取决于感兴趣区域中组织的介电特性。这些属性量化了系统的准确性和功效,并在临床评估之前实现了逼真的建模和仿真。尽管有这些强烈的需求,但是文献中报道的介电性能却遭受了明显的不一致。这些不一致主要归因于历史上从未得到很好控制的临床混杂因素。在这项工作中,使用由猪肌肉和脂肪组成的异质生物样品研究了电介质探针(一种主要的临床混杂因素)的感应深度。复杂的异质样本可以包含几种不同类型的组织,这些组织可以通过组织学进行鉴定。在测量介电特性时,至关重要的是要知道哪些组织有助于测量。为了实现这一点,使用组织学区域,其使得复杂组织样本与所测量的介电特性之间能够对应。组织学区域由在纵向上的感测深度和在径向上的感测半径给出。我们对异质样品执行介电测量,并针对这种测量方案计算介电探针的感应深度。然后,我们检查假定的感应深度值中的误差如何影响组织成分的量化。这项研究表明,感测深度以及组织学区域对我们解释样品介电性能的方式具有重大影响,表明必须特别小心地定义和测量该区域。随着对这些参数的更好理解,将可能进行更准确和可重复的介电测量,从而促进电磁医疗设备的开发。

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