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Prediction model for mental and physical health condition using risk ratio EM

机译:使用风险比EM的心理和身体健康状况预测模型

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Recently, mobile applications which provide health services at anytime and anywhere are on demand due to the growth of mobile wireless technologies. For the health service, an inspection service middleware is needed for monitoring health condition such as observing and analyzing EEG (electroencephalography), ECG (electrocardiography) and EMG (Electrocardiogram) waveforms from wearable ECG devices under the coverage of a wireless sensor network (WSN). For the inspection service middleware, we propose a new notion of prediction model based on risk ratio Expectation Maximization (EM) by monitoring real-time bio-signals. The prediction model can detect abnormal health condition by the monitoring system. In this paper, we explain the detail algorithms and results for these steps based on EM. There are the five modules as follows: (1) The measurement of bio-signals such as body temperature, EEG, ECG and EMG, (2) Object assessment from measurement wavelength, (3) Situation assessment from GPS in smart device, (4) Maximized health condition using risk ratio EM, (5) Knowledge update and decision making for healthy life.
机译:近来,由于移动无线技术的增长,要求随时随地提供健康服务的移动应用程序。对于健康服务,需要检查服务中间件来监视健康状况,例如在无线传感器网络(WSN)的覆盖范围内观察和分析可穿戴ECG设备的EEG(脑电图),ECG(心电图)和EMG(心电图)波形。 。对于检验服务中间件,我们通过监视实时生物信号提出了一种基于风险比期望最大化(EM)的预测模型的新概念。该预测模型可以通过监视系统检测异常健康状况。在本文中,我们将解释基于EM的这些步骤的详细算法和结果。有以下五个模块:(1)测量人体温度,EEG,ECG和EMG等生物信号,(2)通过测量波长进行对象评估,(3)通过智能设备中的GPS进行状态评估,(4 )使用风险比EM最大化健康状况,(5)健康生活的知识更新和决策。

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