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History and Evolution of Modeling in Biotechnology: Modeling Simulation Application and Hardware Performance

机译:生物技术建模的历史与演变:建模与仿真应用与硬件性能

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摘要

Biological systems are typically composed of highly interconnected subunits and possess an inherent complexity that make monitoring, control and optimization of a bioprocess a challenging task. Today a toolset of modeling techniques can provide guidance in understanding complexity and in meeting those challenges. Over the last four decades, computational performance increased exponentially. This increase in hardware capacity allowed ever more detailed and computationally intensive models approaching a “one-to-one” representation of the biological reality. Fueled by governmental guidelines like the PAT initiative of the FDA, novel soft sensors and techniques were developed in the past to ensure product quality and provide data in real time. The estimation of current process state and prediction of future process course eventually enabled dynamic process control. In this review, past, present and envisioned future of models in biotechnology are compared and discussed with regard to application in process monitoring, control and optimization. In addition, hardware requirements and availability to fit the needs of increasingly more complex models are summarized. The major techniques and diverse approaches of modeling in industrial biotechnology are compared, and current as well as future trends and perspectives are outlined.
机译:生物系统通常由高度互连的亚基组成,并且具有固有的复杂性,使生物处理的监测,控制和优化成为一个具有挑战性的任务。今天,建模技术的工具集可以在理解复杂性和满足这些挑战方面提供指导。在过去的四十年中,计算性能呈指数增长。这种硬件容量的增加允许更详细和计算密集型模型接近生物现实的“一对一”表示。通过FDA的Pat主动权,新颖的软传感器和技术等政府指南推动,以确保产品质量并实时提供数据。估计当前过程状态和未来进程课程预测最终实现动态过程控制。在本次审查中,比较了生物技术模型的过去,目前和设想的未来,并在过程监测,控制和优化中的应用方面进行了讨论。此外,总结了满足越来越复杂模型需求的硬件要求和可用性。比较了工业生物技术建模的主要技术和多样化方法,概述了当前的趋势和观点。

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