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The concept of 'buffering' in systems and control theory: From metaphor to math

机译:系统和控制理论中的“缓冲”概念:从隐喻到数学

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The paradigm of "buffering" is used increasingly for the description of diverse "systemic" phenomena encountered in evolutionary genetics, ecology, integrative physiology, and other areas. However, in this new context, the paradigm has not yet matured into a truly quantitative concept inasmuch as it lacks a corresponding quantitative measure of "systems-level buffering strength". Here, I develop such measures on the basis of a formal and general approach to the quantitation of buffering action. "Systems-level buffering" is shown to be synonymous with "disturbance rejection" in feedback-control systems, and can be quantitated by means of dimensionless proportions between partial flows in two-partitioned systems. The units allow either the time-independent, "static" buffering properties or the time-dependent, "dynamic" ones to be measured. Analogous to this "resistance to change", one can define and measure the "conductance to change"; this quantity corresponds to "set-point tracking" in feeback-control systems. Together, these units provide a systematic framework for the quantitation of buffering action in systems biology, and reveal the common principle behind systems-level buffering, classical acid-base buffering, and multiple other manifestations of buffering.
机译:“缓冲”的范例越来越多地用于描述在进化遗传学,生态学,整合生理学和其他领域中遇到的各种“系统性”现象。然而,在这种新的背景下,范式还没有发展成真正的量化概念,因为它缺乏对“系统级缓冲强度”的相应量化度量。在此,我将基于对缓冲作用进行定量的正式和通用方法来制定此类措施。在反馈控制系统中,“系统级缓冲”与“干扰抑制”同义,并且可以通过两部分系统中部分流之间的无量纲比例进行量化。这些单位允许测量与时间无关的“静态”缓冲属性或与时间有关的“动态”缓冲属性。类似于这种“变化的阻力”,可以定义和测量“变化的导电率”。此数量对应于费用控制系统中的“设定点跟踪”。这些单元共同为系统生物学中缓冲作用的定量提供了系统的框架,并揭示了系统级缓冲,经典酸碱缓冲以及缓冲的其他多种表现背后的共同原理。

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