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A Patient-centered medical environment with wearable sensors and cloud monitoring

机译:患者中心的医疗环境,具有可穿戴传感器和云监控

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In this paper, an integrated wearable application platform with physiological sensors are presented. We use the wearable devices to collect the electrocardiography (ECG) and respiration (RESP) signals. This wearable device is a prototype with analog front-end, a microcontroller, and a Bluetooth module. We attach the electrodes on the thorax to record single-lead ECG signal and thorax impedance variation of the users. The mobile phone is a platform for dealing with the digital signal processing. We design an Android app with convenient user interface for every application. With discrete wavelet transform (DWT), we can easily detect the important features such as P wave, QRS complex and T wave and reduce the interference of noise. We develop an application with the wearable device for the emotion recognition. The extracted-features of biomedical signals are implemented with methods by the cloud computing. We implement the cloud computing by Apache Storm, which can transmit the data by streaming via 3G/Wi-Fi. With the proposed stream processing framework for the relaxation state calculation with wearable ECG sensors, under 5 people monitoring simultaneously, the latency and response time can be reduced by 10 times.
机译:本文提出了一种具有生理传感器的集成可穿戴应用平台。我们使用可穿戴设备来收集心电图(ECG)和呼吸(RESP)信号。这种可穿戴设备是带模拟前端,微控制器和蓝牙模块的原型。我们将电极连接在胸部上,以记录用户的单引线ECG信号和胸部阻抗变化。手机是处理数字信号处理的平台。我们为每个应用程序设计了一个Android应用程序,具有方便的用户界面。通过离散小波变换(DWT),我们可以轻松检测P波,QRS复合物和T波等重要特征,并降低噪声的干扰。我们使用可穿戴设备进行情感识别的应用。生物医学信号的提取特征是用云计算的方法实现的。我们通过Apache Storm实现云计算,它可以通过通过3G / Wi-Fi流传输数据。利用具有可穿戴ECG传感器的弛豫状态计算的提出的流处理框架,在5人同时监测下,延迟和响应时间可以减少10次。

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