1
|
Alamro W, Seet BC, Wang L, Parthiban P. Early-Stage Lung Tumor Detection Based on Super-Wideband Microwave Reflectometry. ELECTRONICS 2022; 12:36. [DOI: 10.3390/electronics12010036] [Citation(s) in RCA: 3] [Impact Index Per Article: 1.0] [Reference Citation Analysis] [Abstract] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 10/11/2024]
Abstract
This paper aims to detect early-stage lung tumors in deep-seated and superficial locations, and to precisely measure the size of the detected tumor using non-invasive microwave reflectometry over a super-wideband (SWB) frequency range. Human lung phantom and lung tumors are modeled using a multi-layer concentric cylinder structure and spherical-shaped inclusions, respectively. Firstly, a study on the dielectric properties of human torso tissues is carried out over an SWB frequency range of 1–25 GHz based on the Cole–Cole dispersion model. Intensive full-wave simulations of the modeled phantom under irradiation by a custom-designed SWB antenna array are then performed. Results show that small tumor sizes from 5 mm radius in both deep-seated and superficial locations of the lung tissue can be detected based on the contrast of reflection coefficients and reconstructed images produced from backscattered signals between normal and anomalous tissues. The potential of using SWB microwave reflectometry to successfully detect the lung tumors in their early stages and at different depths of the lung tissue has been demonstrated.
Collapse
Affiliation(s)
- Wasan Alamro
- Department of Electrical and Electronic Engineering, Auckland University of Technology, Auckland 1010, New Zealand
| | - Boon-Chong Seet
- Department of Electrical and Electronic Engineering, Auckland University of Technology, Auckland 1010, New Zealand
| | - Lulu Wang
- Biomedical Device Innovation Center, Shenzhen Technology University, Shenzhen 518118, China
| | - Prabakar Parthiban
- Hardware Engineering Department, Services and Connectivity Division, Honeywell Aerospace, Yeovil BA20 2YD, UK
| |
Collapse
|