2022
DOI: 10.1155/2022/2389636
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IoT-Based Hybrid Ensemble Machine Learning Model for Efficient Diabetes Mellitus Prediction

Abstract: Nowadays, there is a growing need for Internet of Things (IoT)-based mobile healthcare applications that help to predict diseases. In recent years, several people have been diagnosed with diabetes, and according to World Health Organization (WHO), diabetes affects 346 million individuals worldwide. Therefore, we propose a noninvasive self-care system based on the IoT and machine learning (ML) that analyses blood sugar and other key indicators to predict diabetes early. The main purpose of this work is to devel… Show more

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Cited by 31 publications
(10 citation statements)
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“…SHS is made of various computing devices that act proactively on behalf of persistent users [18]. Hence, for making good decisions in SHS, we require essential features, for example, users' preferences need to be considered for nding their choice of interest in certain scenarios [19][20][21][22][23][24]. Here, user preferences deal with the information used for describing the situation of a person considering the physical medical status or requirements.…”
Section: Introductionmentioning
confidence: 99%
“…SHS is made of various computing devices that act proactively on behalf of persistent users [18]. Hence, for making good decisions in SHS, we require essential features, for example, users' preferences need to be considered for nding their choice of interest in certain scenarios [19][20][21][22][23][24]. Here, user preferences deal with the information used for describing the situation of a person considering the physical medical status or requirements.…”
Section: Introductionmentioning
confidence: 99%
“…We need a new noninvasive evaluation model for DN as an early diagnosis method (Zhang et al, 2022). There is a growing need for Internet of Things (IoT)-based mobile medical applications to help predict a disease (Padhy et al, 2022).…”
Section: Discussionmentioning
confidence: 99%
“…According to the diagnostic objective, backward propagation finds the most appropriate weights for each neuron and subclassifiers as shown in Figure 4 . The cross-entropy loss function [ 35 ] and the Adam optimization algorithm [ 36 ] play an important role in the backward propagation parameters. The former is a widely used loss function in multiclassification tasks, and the latter effectively minimizes the loss function.…”
Section: Intelligent Fault Diagnosis Methods For Rotating Machinery B...mentioning
confidence: 99%