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Estimation and Verification of Hybrid Heart Models for Personalised Medical and Wearable Devices

机译:个性化医疗和可穿戴设备的混合心脏模型的估计和验证

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We are witnessing a huge growth in popularity of wearable and implantable devices equipped with sensors that are capable of monitoring a range of physiological processes and communicating the data to smartphones or to medical monitoring devices. Applications include not only medical diagnosis and treatment, but also biometric identification and authentication systems. An important requirement is personalisation of the devices, namely, their ability to adapt to the physiology of the human wearer and to faithfully reproduce the characteristics in real-time for the purposes of authentication or optimisation of medical therapies. In view of the complexity of the embedded software that controls such devices, model-based frameworks have been advocated for their design, development, verification and testing. In this paper, we focus on applications that exploit the unique characteristics of the heart rhythm. We introduce a hybrid automata model of the electrical conduction system of a human heart, adapted from Lian et al., and present a framework for the estimation of personalised parameters, including the generation of synthetic ECGs from the model. We demonstrate the usefulness of the framework on two applications, ensuring safety of a pacemaker against a personalised heart model and ECG-based user authentication.
机译:我们目睹了配备有传感器的可穿戴和可植入设备的广泛普及,这些传感器能够监控各种生理过程并将数据传输到智能手机或医疗监控设备。应用不仅包括医学诊断和治疗,还包括生物特征识别和认证系统。一个重要的要求是设备的个性化,即它们具有适应人类穿戴者的生理机能并忠实地实时再现特性的能力,以用于认证或优化医疗方法。考虑到控制此类设备的嵌入式软件的复杂性,已提倡基于模型的框架进行设计,开发,验证和测试。在本文中,我们重点研究利用心律独特特征的应用程序。我们引入了一个适用于Lian等人的人类心脏电传导系统的混合自动机模型,并提出了一个用于估计个性化参数的框架,包括从该模型生成合成心电图的过程。我们在两个应用程序上演示了该框架的有用性,确保了起搏器针对个性化心脏模型和基于ECG的用户身份验证的安全性。

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