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Augmented Switching Linear Dynamical System Model for Gas Concentration Estimation with MOX Sensors in an Open Sampling System

机译:开放采样系统中使用MOX传感器估算气体浓度的增强切换线性动力学系统模型

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摘要

In this paper, we introduce a Bayesian time series model approach for gas concentration estimation using Metal Oxide (MOX) sensors in Open Sampling System (OSS). Our approach focuses on the compensation of the slow response of MOX sensors, while concurrently solving the problem of estimating the gas concentration in OSS. The proposed Augmented Switching Linear System model allows to include all the sources of uncertainty arising at each step of the problem in a single coherent probabilistic formulation. In particular, the problem of detecting on-line the current sensor dynamical regime and estimating the underlying gas concentration under environmental disturbances and noisy measurements is formulated and solved as a statistical inference problem. Our model improves, with respect to the state of the art, where system modeling approaches have been already introduced, but only provided an indirect relative measures proportional to the gas concentration and the problem of modeling uncertainty was ignored. Our approach is validated experimentally and the performances in terms of speed of and quality of the gas concentration estimation are compared with the ones obtained using a photo-ionization detector.
机译:在本文中,我们介绍了一种在开放采样系统(OSS)中使用金属氧化物(MOX)传感器进行气体浓度估算的贝叶斯时间序列模型方法。我们的方法着重于补偿MOX传感器的慢响应,同时解决估计OSS中气体浓度的问题。所提出的增强交换线性系统模型允许将在问题的每个步骤中出现的所有不确定性来源都包含在单个相干概率公式中。尤其是,在环境干扰和噪声测量下,在线检测当前传感器的动态状态并估算潜在的气体浓度的问题已被提出并解决为统计推断问题。我们的模型相对于已经引入系统建模方法的现有技术进行了改进,但是仅提供了与气体浓度成比例的间接相对测量,并且模型不确定性问题被忽略了。我们的方法已通过实验验证,并且将气体浓度估算的速度和质量方面的性能与使用光电离检测器获得的性能进行了比较。

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