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High-level modeling for computer-aided clinical trials of medical devices

机译:用于医疗设备的计算机辅助临床试验的高级建模

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Medical devices like the Implantable Cardioverter Defibrillator (ICD) are life-critical systems. Malfunctions of the device can cause serious injury or death of the patient. In addition to rigorous testing and verification during the development process, new medical devices often go through clinical trials to evaluate their safety and performance on sample populations. Clinical trials are costly and prone to failure if not planned and executed properly. Evaluating devices on computer models of the relevant physiological systems can provide helpful insights into the safety and efficacy of the device, thus helping to plan and execute a clinical trial. In this paper, we demonstrate how to develop high-level physiological models of cardiac electrophysiology and how to apply them to the Rhythm ID Head to Head Trial (RIGHT), a 5-year long clinical trial for comparing two ICDs. We refer to this as a Computer-Aided Clinical Trial (CACT). We explored two modeling options, a white-box model capturing the mechanisms of the physiological behaviors, and a blackbox model which uses machine learning methods to synthesize physiological input signals. Both models were able to generate physiological inputs to the ICDs and we discuss the challenges and appropriateness of the two modeling options.
机译:植入式心脏复律除颤器(ICD)等医疗设备是至关重要的系统。设备故障可能导致患者严重受伤或死亡。除了在开发过程中进行严格的测试和验证之外,新的医疗设备还经常通过临床试验来评估其在样本人群中的安全性和性能。如果没有适当计划和执行,临床试验的成本很高并且容易失败。在相关生理系统的计算机模型上评估设备可以提供有关设备安全性和有效性的有用见解,从而有助于计划和执行临床试验。在本文中,我们演示了如何开发心脏电生理学的高级生理学模型,以及如何将其应用于Rhythm ID头对头试验(RIGHT),这是一项为期5年的临床试验,用于比较两种ICD。我们将其称为计算机辅助临床试验(CACT)。我们探索了两个建模选项,一个是捕获生理行为机制的白盒模型,另一个是使用机器学习方法来合成生理输入信号的黑盒模型。两种模型都能够为ICD产生生理输入,我们讨论了两种建模方法的挑战和适用性。

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