Literature DB >> 33747964

Classification of Metastatic and Non-Metastatic Thoracic Lymph Nodes in Lung Cancer Patients Based on Dielectric Properties Using Adaptive Probabilistic Neural Networks.

Di Lu1, Hongfeng Yu2, Zhizhi Wang1, Zhiming Chen1, Jiayang Fan1, Xiguang Liu1, Jianxue Zhai1, Hua Wu1, Xuefei Yu2, Kaican Cai1.   

Abstract

OBJECTIVE: Dielectric properties can be used in normal and malignant tissue identification, which requires an effective classifier because of the high throughput nature of the data. With easy training and fast convergence, probabilistic neural networks (PNNs) are widely applied in pattern classification problems. This study aims to propose a classifier to identify metastatic and non-metastatic thoracic lymph nodes in lung cancer patients based on dielectric properties.
METHODS: The dielectric properties (permittivity and conductivity) of lymph nodes were measured using an open-ended coaxial probe. The Synthetic Minority Oversampling Technique method was adopted to modify the dataset. Feature parameters were scored to select the appropriate feature vector using a Statistical Dependency algorithm. The dataset was classified using adaptive PNNs with an optimized smooth factor using the simulated annealing PNN (SA-PNN). The results were compared with traditional Probabilistic, Support Vector Machines, k-Nearest Neighbor and the Classify functions in MATLAB.
RESULTS: The conductivity frequencies of 3959, 3958, 3960, 3978, 3510, 3889, 3888, and 3976 MHz were selected as the feature vectors for 219 lymph nodes (178 non-metastatic and 41 metastatic). Compared with the other methods, SA-PNN achieved the highest classification accuracy (92.92%) and the corresponding specificity and sensitivity were 94.72% and 91.11%, respectively.
CONCLUSIONS: Compared with the other methods, the SA-PNN proposed in the present study achieved a higher classification accuracy, which provides a new scheme for classification of metastatic and non-metastatic thoracic lymph nodes in lung cancer patients based on dielectric properties.
Copyright © 2021 Lu, Yu, Wang, Chen, Fan, Liu, Zhai, Wu, Yu and Cai.

Entities:  

Keywords:  dielectric properties; metastatic; probabilistic neural network; simulated annealing algorithm; thoracic lymph nodes

Year:  2021        PMID: 33747964      PMCID: PMC7973113          DOI: 10.3389/fonc.2021.640804

Source DB:  PubMed          Journal:  Front Oncol        ISSN: 2234-943X            Impact factor:   6.244


  15 in total

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Journal:  Comput Methods Programs Biomed       Date:  2018-04-28       Impact factor: 5.428

2.  Randomized trial of lobectomy versus limited resection for T1 N0 non-small cell lung cancer. Lung Cancer Study Group.

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4.  [Diagnostic values of breast imaging and reporting data system and ultrasonic elastography for benign and malignant breast lesions].

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6.  Dielectric Properties of Normal and Metastatic Lymph Nodes Ex Vivo From Lung Cancer Surgeries.

Authors:  Xuefei Yu; Ying Sun; Kaican Cai; Hongfeng Yu; Difu Zhou; Di Lu; Sherman Xuegang Xin
Journal:  Bioelectromagnetics       Date:  2020-01-08       Impact factor: 2.010

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8.  Microwave dielectric property based classification of renal calculi: Application of a kNN algorithm.

Authors:  Banu Saçlı; Cemanur Aydınalp; Gökhan Cansız; Sulayman Joof; Tuba Yilmaz; Mehmet Çayören; Bülent Önal; Ibrahim Akduman
Journal:  Comput Biol Med       Date:  2019-07-23       Impact factor: 4.589

9.  Dielectric properties of human liver from 10 Hz to 100 MHz: normal liver, hepatocellular carcinoma, hepatic fibrosis and liver hemangioma.

Authors:  Hang Wang; Yong He; Min Yang; Qingguo Yan; Fusheng You; Feng Fu; Ting Wang; Xuyang Huo; Xiuzhen Dong; Xuetao Shi
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  1 in total

1.  Dielectric property measurements for the rapid differentiation of thoracic lymph nodes using XGBoost in patients with non-small cell lung cancer: a self-control clinical trial.

Authors:  Di Lu; Jinxing Peng; Zhongju Wang; Ying Sun; Jianxue Zhai; Zhizhi Wang; Zhiming Chen; Yuji Matsumoto; Long Wang; Sherman Xuegang Xin; Kaican Cai
Journal:  Transl Lung Cancer Res       Date:  2022-03
  1 in total

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