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Prediction of Personalised Life Expectancy using Personal Health Devices in mHealth Networks

机译:使用MHECHEATH网络中的个人健康设备预测个性化预期寿命

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The ability to predict life expectancy (LE) for an individual or a group of people has been in demand for long, however the accuracy and validity of results are difficult to enhance due to the numerous variables required for consideration. The main causes of issues are that human behaviour and activities can be so different and unpredictable that it is almost impossible to measure, classify, define and predict against generic statistic values, which themselves are too numerous in variables to determine. However, health-related data are becoming increasingly available with the emergence of data science technologies and there has been an increase of smartphone and wearable device applications that allow for health and fitness tracking to aid these demands. Some health-related data, such as calorie expenditure and sleep and heart rate monitoring can be provided by apps that are collected by sensors and processed in the cloud. A personalized life expectancy (PLE) can be provided for individuals to improve wellbeing and encourage healthy lifestyle changes. There is currently no work that has addressed a PLE information that can be customized for the individual. This article proposes a novel and innovative idea of calculating and predicting LE. This paper provides a solution that improves the accuracy of a group LE based on individual health data as well as encouraging individuals to change their lifestyle by monitoring their own PLE to improve their quality of their life.
机译:预测个人或一群人的预期寿命(Le)的能力已经存在,但由于考虑所需的许多变量,结果的准确性和有效性难以增强。问题的主要原因是人行为行为和活动可能是如此不同和不可预测的,即几乎不可能衡量,分类,定义和预测通用统计值,在变量中本身太多以确定。然而,与健康相关的数据越来越多地获得数据科学技术的出现,并且智能手机和可穿戴设备应用程序的增加,允许健康和健身跟踪来帮助这些需求。可以通过传感器收集并在云中处理的应用程序提供一些与卡路里支出和睡眠和心率监测等健康相关数据。可以为个人提供个性化的预期寿命(PLE)以提高福祉,并鼓励健康的生活方式改变。目前没有办法解决了可以为个人定制的PLE信息。本文提出了一种对计算和预测le的新颖和创新理念。本文提供了一种解决方案,可提高基于个体健康数据的组合LE的准确性,并鼓励个人通过监测自己的PLE来改善他们的生活质量来改变其生活方式。

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