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Model-Based Evaluation Of System Scalability: Bandwidth Analysis For Smartphone-Based Biosensing Applications

机译:基于模型的系统可扩展性评估:基于智能手机的生物传感应用的带宽分析

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摘要

Scalability is a design principle often valued for the engineering of complex systems. Scalability is the ability of a system to change the current value of one of its specification parameters. Although targeted frameworks are available for the evaluation of scalability for specific digital systems, methodologies enabling scalability analysis of multidomain, complex systems, are still missing. In acknowledgment of the importance for complex systems to present the ability to change or evolve, we present in this work a systemlevel model-based methodology allowing the multidisciplinary parametric evaluation of scalability. Our approach can be used to determine how a set of limited changes to targeted system modules could affect design specifications of interest. It can also help predict and trace system bottlenecks over several product generations, offering system designers the chance to to better plan re-engineering efforts for scaling a system specification efficaciously. We demonstrate the value of our methodology by investigating a smartphone-based biosensing instrumentation platform. Specifically, we carry out scalability analysis for the system’s bandwidth specification: the maximum analog voltage waveform excitation frequency the system could output while allowing continuous acquisition and wireless streaming of bioimpedance measurements. We rely on several SysML modelling tools, including dependency matrices, as well as a fault-detection Simulink Stateflow executable model to conclude on how the successive re-engineering of 5 independent system modules, from the replacement of a wireless Bluetooth interface, to the revision of the ADC sample-and-hold operation could help increase system bandwidth.
机译:可伸缩性是经常被复杂系统工程所重视的设计原则。可伸缩性是系统更改其规范参数之一的当前值的能力。尽管有针对性的框架可用于评估特定数字系统的可伸缩性,但是仍然缺少能够对多域,复杂系统进行可伸缩性分析的方法。在认识到复杂系统呈现变化或演化能力的重要性时,我们在这项工作中提出了一种基于系统级模型的方法,可以对可伸缩性进行多学科参数评估。我们的方法可用于确定对目标系统模块的一组有限更改如何影响感兴趣的设计规范。它还可以帮助预测和跟踪几代产品中的系统瓶颈,使系统设计师有机会更好地计划重新设计工作,以有效地扩展系统规格。我们通过研究基于智能手机的生物传感仪器平台来证明我们方法论的价值。具体来说,我们针对系统的带宽规格进行可扩展性分析:系统可以输出的最大模拟电压波形激励频率,同时允许连续采集和无线传输生物阻抗测量值。我们依靠几种SysML建模工具(包括依赖关系矩阵)以及故障检测Simulink Stateflow可执行模型来得出结论,说明如何对5个独立系统模块进行连续的重新设计,从无线蓝牙接口的更换到修订。 ADC采样保持操作的使用有助于提高系统带宽。

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