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Measurement processing for state estimation and fault identification in batch fermentations

机译:分批发酵中状态估计和故障识别的测量处理

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This work describes an application of maximum likelihood identification and statistical detection techniques for determining the presence and nature of abnormal behaviors in batch fermentations. By appropriately organizing these established techniques, a novel algorithm that is able to detect and isolate faults in nonlinear and uncertain processes was developed. The technique processes residuals from a nonlinear filter based on the assumed model of fermentation. This information is combined with mass balances to conduct statistical tests that are used as the core of the detection procedure. The approach uses a sliding window to capture the present statistical properties of filtering and mass-balance residuals. In order to avoid divergence of the nonlinear monitor filter, the maximum likelihood states and parameters are periodically estimated. The maximum likelihood parameters are used to update the kinetic parameter values of the monitor filter. If the occurrence of a fault is detected, alternative faulty model structures are evaluated statistically through the use of log-likelihood function values and chi2 detection tests. Simulation obtained for xanthan gum batch fermentations are encouraging.
机译:这项工作描述了最大似然识别和统计检测技术在确定分批发酵中异常行为的存在和性质中的应用。通过适当地组织这些已建立的技术,开发了一种能够检测和隔离非线性和不确定过程中的故障的新颖算法。该技术基于假定的发酵模型处理来自非线性过滤器的残差。该信息与质量平衡相结合,以进行统计检验,这些检验被用作检测程序的核心。该方法使用滑动窗口来捕获过滤和质量平衡残差的当前统计属性。为了避免非线性监视滤波器的发散,定期估计最大似然状态和参数。最大似然参数用于更新监视过滤器的动力学参数值。如果检测到故障的发生,则通过使用对数似然函数值和chi2检测测试对替代的故障模型结构进行统计评估。黄原胶分批发酵获得的模拟令人鼓舞。

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