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Evaluation of a Dielectric Inclusion Using Inductive RF Antennas and Artificial Neural Networks for Tissue Diagnosis

机译:使用电感RF天线和人工神经网络进行组织诊断的介电包裹物评估

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In this paper, the relevance of the non contact RF evaluation of the complex permittivity of organic material is addressed by means of a computational approach. The authors consider a simple configuration constituted of a single loop RF antenna interacting with a dielectric material mimicking a typical organic tissue (the electrical conductivity is 0.6 S/m and the dielectric constant is 80) which includes a buried inclusion (e.g. a tumor featuring a conductivity of 0.2 to 1.6 S/m and a dielectric constant ranging from 20 to 160). First a three dimensional semi analytical model (DPSM) is implemented in order to evaluate the sensitivity of such an antenna to the complex permittivity of the buried inclusion. Then, the inverse problem which consists in evaluating the complex permittivity, the size and the location of the inclusion is addressed by means of an artificial neural network (ANN) approach. For the considered configuration (5 mm radius antenna, 40 mm radius spherical inclusion buried at a 5 to 20 mm depth within the tissue, antenna operated at 135 MHz), the main conclusions are that the complex permittivity and the depth of the inclusion can be fairly estimated (estimation error smaller than 5%), even in the case of antenna positioning uncertainties, providing the ANN is adequately trained. Also, a double antenna configuration significantly enhances the estimation of the location and size of the inclusion.
机译:在本文中,有机材料的复介电常数的非接触射频评估的相关性是通过计算方法来解决。作者认为简单的结构构成的单回路RF天线用介电材料模仿典型的有机组织相互作用(电导率为0.6 S / m和介电常数为80),其包括掩埋夹杂物(例如肿瘤设有0.2〜1.6 S / m和介电常数为20〜160)的导电性。第一三维半分析模型(DPSM)以这样的天线的灵敏度评价到掩埋夹杂物的复介电常数来实现。然后,它由在评价复介电常数的逆问题,尺寸和夹杂物的位置由人工神经网络(ANN)的方法的手段解决。对于所考虑的配置(半径5mm天线40毫米半径的球面包含埋在组织内的5到20毫米的深度,在135 MHz的天线操作的),主要结论是,该复介电常数和夹杂物的深度可相当估计(小于5%的估计误差),即使在天线定位的不确定性的情况下,提供所述人工神经网络是充分的培训。此外,双天线配置显著增强了夹杂物的位置和大小的估计。

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