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Optimal experimental design for discriminating between microbial growth models as function of suboptimal temperature

机译:区分微生物生长模型与次优温度的函数的最佳实验设计

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In the field of predictive microbiology, mathematical models play an important role for describing microbial growth, survival and inactivation. Often different models are available for describing the microbial dynamics in a similar way. However, the model that describes the system in the best way is desired. Optimal experimental design for model discrimination (OED-MD) is an efficient tool for discriminating among rival models. In this work the T_(12)-criterion proposed by Atkinson and Fedorov (1975) [1] and applied efficiently by Ucinski and Bogacka (2005) [2] and the Schwaab-approach proposed by Schwaab et al. (2008) [3] and Donckels et al. (2009) [4] will be applied for discriminating among rival models for the microbial growth rate as a function of temperature. The two methods will be tested in silico and their performances will be compared. Results from a simulation study indicate that it is possible to validate the case that one of the proposed models is more accurate for describing the temperature effect on the microbial growth rate. Both methods are able to design inputs with a sufficient discrimination potential. However, it has been observed that the Schwaab-approach provides inputs with a higher discrimination potential in combination with more accurate parameter estimates.
机译:在预测微生物学领域,数学模型在描述微生物的生长,存活和失活方面起着重要作用。通常,可用不同的模型以相似的方式描述微生物动力学。但是,需要以最佳方式描述系统的模型。用于模型判别的最佳实验设计(OED-MD)是区分竞争对手模型的有效工具。在这项工作中,由Atkinson和Fedorov(1975)[1]提出并由Ucinski和Bogacka(2005)[2]有效地应用的T_(12)标准以及Schwaab等人提出的Schwaab方法。 (2008)[3]和Donckels等。 (2009)[4]将被用于区分微生物生长速率随温度变化的竞争模型。两种方法将在计算机上进行测试,并将比较它们的性能。模拟研究的结果表明,有可能验证以下情况:所提出的模型之一更准确地描述了温度对微生物生长速率的影响。两种方法都能够设计具有足够辨别力的输入。但是,已经观察到Schwaab方法为输入提供了更高的识别潜力,同时结合了更准确的参数估计。

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