Dielectric Characterization and Statistical Analysis of Ex-Vivo Burnt Human Skin Samples for Microwave Sensor Development

被引:6
作者
Rangaiah, Pramod K. B. [1 ]
Kouki, Mokhtar [2 ]
Dhouibi, Yasmina [2 ]
Huss, Fredrik [3 ,4 ]
Mandal, Bappaditya [1 ]
Augustine, Bobins [1 ,5 ]
Perez, Mauricio David [1 ]
Augustine, Robin [1 ]
机构
[1] Uppsala Univ, Dept Engn Sci, Div Solid State Elect, Angstrom Lab,Microwaves Med Engn Grp, S-75121 Uppsala, Sweden
[2] Datametrix AG, CH-2000 Neuchatel, Switzerland
[3] Uppsala Univ, Dept Surg Sci, Plast Surg, S-75105 Uppsala, Sweden
[4] Uppsala Univ Hosp, Burn Ctr, Dept Plast & Maxillofacial Surg, S-75185 Uppsala, Sweden
[5] Uppsala Univ, Dept Informat Technol, Div Comp Syst, Angstrom Lab,Uppsala Networked Objects UNO, S-75121 Uppsala, Sweden
来源
IEEE ACCESS | 2023年 / 11卷
关键词
Dielectrics; Skin; Transmission line measurements; Surgery; Statistical analysis; Probes; Permittivity; Burnt skin; permittivity; microwave profiling; statistical analysis; ENDED COAXIAL LINE; ELECTRICAL-PROPERTIES; PERMITTIVITY; TISSUES; PROBE;
D O I
10.1109/ACCESS.2023.3234185
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
The dielectric properties of skin tissues in relation to different degrees of burn are a necessary prerequisite for designing non-invasive microwave sensing modalities. Due to the difficulties in obtaining human tissue samples, such databases are largely unavailable. To bridge the knowledge gap in this field, we attempt to create a dielectric database of various burn-degree skin samples and their statistical analysis in this work. This research is part of the European "Senseburn " project, which aims to create a non-invasive diagnostic tool that can measure the severity and depth of burns on humans in a clinical setting. In this work, several ex-vivo burnt samples were collected from the Uppsala University Hospital (Akademiska sjukhuset, Sweden). Out of that, eight samples with different degrees of burns in various human body locations were selected for the analysis. The dielectric characterization of the categorized samples was done using an Keysight N1501A dielectric open-end co-axial probe Kit. The dielectric characterization was made from 500 MHz to 10 GHz with 1001 points. The measurement was made systematically, and the clinician feedback forms were gathered and analyzed throughout the process. The measurement data followed the FASTCLUS procedure, which was initially analyzed using density plot, convergence, and cubic clustering criteria. For the statistical analysis, 11 frequency points were considered for eight samples. The results of the fundamental statistical analysis using the FASTCLUS procedure resulted in 88 data sets. Later, data sets were analyzed in sample-wise clusters. Every sample was made with two clusters, i.e., cluster 1, which consisted of healthy sectors, and cluster 2, which consisted of burnt sectors. We made the linear approximations for the sample-wise clusters and found the constant real permittivity difference. Furthermore, we found a pattern in the constant real permittivity differences of every sample that is proportional to the burn degrees. This information is needed in order to identify optimization parameters, i.e., the sensitivity with respect to dielectric difference for various burn degrees. For this purpose, extensive measurement campaigns across the microwave frequency band from 500 MHz - 10 GHz were conducted. Based on the analysis of dielectric data, each skin region of interest (ROI) has its own dielectric properties. Additionally, we developed a proof of concept non-invasive flexible microwave sensor based on the dielectric database collected from burnt ex-vivo human tissue samples. In this way, we could distinguish between phantoms with different dielectric properties in the burned human tissue sample range.
引用
收藏
页码:4359 / 4372
页数:14
相关论文
共 61 条
  • [1] Variational formulation of open-ended coaxial line in contact with layered biological medium
    Alanen, E
    Lahtinen, T
    Nuutinen, J
    [J]. IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 1998, 45 (10) : 1241 - 1248
  • [2] Andreuccetti D., 1997, An Internet Resource for the Calculation of the Dielectric Properties of Body Tissues in the Frequency Range 10 Hz-100 GHz
  • [3] [Anonymous], 2020, N1501A Dielectric Probe Kit 10 MHz To 50GHz Tech. Overview
  • [4] [Anonymous], 2014, KEYS 85070E DIEL PRO
  • [5] [Anonymous], 2008, FASTCLUS PROC SAS ST, P1621
  • [6] [Anonymous], 2020, DAT SHEET IO LIB SUI
  • [7] Asselin Kenny, 2020, National Burn Awareness Week 2020-American Burn Association
  • [8] Balaban R S, 2001, ILAR J, V42, P248
  • [9] A CRAMER RULE FOR LEAST-NORM SOLUTIONS OF CONSISTENT LINEAR-EQUATIONS
    BENISRAEL, A
    [J]. LINEAR ALGEBRA AND ITS APPLICATIONS, 1982, 43 (MAR) : 223 - 226
  • [10] Acute Burn Care
    Bezuhly, Michael
    Fish, Joel S.
    [J]. PLASTIC AND RECONSTRUCTIVE SURGERY, 2012, 130 (02) : 349E - 358E