2020
DOI: 10.1371/journal.pone.0229367
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Multi-stage feature selection (MSFS) algorithm for UWB-based early breast cancer size prediction

Abstract: Breast cancer is the most common cancer among women and it is one of the main causes of death for women worldwide. To attain an optimum medical treatment for breast cancer, an early breast cancer detection is crucial. This paper proposes a multi- stage feature selection method that extracts statistically significant features for breast cancer size detection using proposed data normalization techniques. Ultra-wideband (UWB) signals, controlled using microcontroller are transmitted via an antenna from one end of… Show more

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Cited by 19 publications
(18 citation statements)
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“…Similar issues have been found with other disease prediction and management systems developed to work with one modality at a time [2], [24]. Some studies proposed fusion frameworks such as for readmission prediction [25], disease prediction which are specific for the fusion of multi-modal or multi-source data at a time [18], [26]. These systems offer better results than unimodal based system.…”
Section: Introductionmentioning
confidence: 58%
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“…Similar issues have been found with other disease prediction and management systems developed to work with one modality at a time [2], [24]. Some studies proposed fusion frameworks such as for readmission prediction [25], disease prediction which are specific for the fusion of multi-modal or multi-source data at a time [18], [26]. These systems offer better results than unimodal based system.…”
Section: Introductionmentioning
confidence: 58%
“…Majumder and Pratihar proposed a multi-sensor fusion via fuzzy clustering for the prediction of heart diseases [21]. Vijayasarveswari et al introduced a multi-phase feature selection approach for cancer prediction [26]. Zhang…”
Section: A Multi-modal Data Fusionmentioning
confidence: 99%
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“…Recently, this technology was used to detect the presence, benign and malignant of breast tumors. 30,[34][35][36][37] Song et al compared the time-frequency feature extraction methods of microwave data, and then the presence of tumor was detected based on support vector machine. 38 In Song et al, 39 data points of the received signals were fed into the neural network and the tumor was located.…”
Section: Introductionmentioning
confidence: 99%
“…On the other hand, artificial intelligence technology with strong learning and representation ability has great attraction and potential in microwave breast cancer detection. Recently, this technology was used to detect the presence, benign and malignant of breast tumors 30,34–37 . Song et al.…”
Section: Introductionmentioning
confidence: 99%