Machine Learning Driven IoT Based Smart Health Care Kit

Lekhasree Narayanagari, B. Saha
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引用次数: 2

Abstract

This paper focuses on developing a machine learning driven IOT based smart healthcare kit. It plays an important role in emergency medical service like Intensive Care Units (ICU), by using an INTEL GALILEO 2ND generation development board. It facilitates to monitor and track different health indicators such as Blood Pressure, Pulses, and Temperature of the patient. This system allows to send the real time data of a patient to the physician and record it for future use. In this research we conducted two experiments: a)heart disease prediction from pathology data and b) lung disease prediction from X-ray images. For heart disease prediction we evaluate the performance of K-Nearest Neighbour and Random Forest Classifier and for lung disease prediction, we use VGG19 deep architecture. Experimental results demonstrate that machine learning can help to automate the IoT based smart healthcare kit and help doctors to diagnose the diseases.
基于机器学习驱动物联网的智能医疗保健工具包
本文的重点是开发一个基于机器学习驱动的物联网智能医疗工具包。它通过使用INTEL GALILEO第二代开发板,在重症监护病房(ICU)等紧急医疗服务中发挥重要作用。它有助于监测和跟踪不同的健康指标,如血压、脉搏和病人的体温。该系统允许将患者的实时数据发送给医生并记录下来以备将来使用。在这项研究中,我们进行了两个实验:a)通过病理数据预测心脏病;b)通过x射线图像预测肺部疾病。对于心脏病预测,我们评估k近邻和随机森林分类器的性能,对于肺病预测,我们使用VGG19深度架构。实验结果表明,机器学习可以帮助基于物联网的智能医疗套件实现自动化,并帮助医生诊断疾病。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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