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Models and Signal Processing for an Implanted Ethanol Bio-Sensor

机译:植入式乙醇生物传感器的模型和信号处理

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The understanding of drinking patterns leading to alcoholism has been hindered by an inability to unobtrusively measure ethanol consumption over periods of weeks to months in the community environment. An implantable ethanol sensor is under development using microelectromechanical systems technology. For safety and user acceptability issues, the sensor will be implanted subcutaneously and, therefore, measure peripheral-tissue ethanol concentration. Determining ethanol consumption and kinetics in other compartments from the time course of peripheral-tissue ethanol concentration requires sophisticated signal processing based on detailed descriptions of the relevant physiology. A statistical signal processing system based on detailed models of the physiology and using extended Kalman filtering and dynamic programming tools is described which can estimate the time series of ethanol concentration in blood, liver, and peripheral tissue and the time series of ethanol consumption based on peripheral-tissue ethanol concentration measurements.
机译:由于无法在社区环境中数周至数月的时间内无差别地衡量乙醇的消费,因而阻碍了人们对导致酒精中毒的饮酒方式的理解。使用微机电系统技术的可植入乙醇传感器正在开发中。出于安全和用户可接受性的考虑,传感器将被皮下植入,因此可以测量周围组织的乙醇浓度。从周围组织乙醇浓度的变化过程中确定其他隔室中的乙醇消耗和动力学需要基于相关生理的详细描述进行复杂的信号处理。描述了一种基于详细生理模型并使用扩展的卡尔曼滤波和动态编程工具的统计信号处理系统,该系统可以估计血液,肝脏和外周组织中乙醇浓度的时间序列以及基于外周血的乙醇消耗的时间序列组织乙醇浓度测量。

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