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Making sense of complex phenomena in biology

机译:了解生物学中的复杂现象

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摘要

The remarkable advances in biotechnology over the past two decades have resulted in the generation of a huge amount of experimental data. It is now recognized that, in many cases, to extract information from this data requires the development of computational models. Models can help gain insight on various mechanisms and can be used to process outcomes of complex biological interactions. To do the latter, models must become increasingly complex and, in many cases, they also become mathematically intractable. With the vast increase in computing power these models can now be numerically solved and can be made more and more sophisticated. A number of models can now successfully reproduce detailed observed biological phenomena and make important testable predictions. This naturally raises the question of what we mean by understanding a phenomenon by modelling it computationally. This paper briefly considers some selected examples of how simple mathematical models have provided deep insights into complicated chemical and biological phenomena and addresses the issue of what role, if any, mathematics has to play in computational biology.
机译:在过去的二十年中,生物技术的显着进步导致产生了大量的实验数据。现在已经认识到,在许多情况下,要从该数据中提取信息需要开发计算模型。模型可以帮助您了解各种机制,并可用于处理复杂的生物相互作用的结果。为了实现后者,模型必须变得越来越复杂,并且在许多情况下,它们在数学上也变得棘手。随着计算能力的极大提高,这些模型现在可以通过数字方式求解,并且可以变得越来越复杂。现在,许多模型可以成功地重现详细观察到的生物学现象,并做出重要的可检验的预测。这自然提出了一个问题,即通过对模型进行计算建模来理解它意味着什么。本文简要地考虑了一些简单的数学模型如何提供了对复杂的化学和生物学现象的深刻见解的示例,并讨论了数学在计算生物学中必须扮演的角色(如果有)的问题。

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