网络拓扑
还原(数学)
计算机科学
PID控制器
控制理论(社会学)
控制(管理)
控制工程
数学
工程类
温度控制
人工智能
操作系统
几何学
作者
Maurice Filo,Ankit Gupta,Mustafa Khammash
出处
期刊:Science Advances
[American Association for the Advancement of Science]
日期:2024-08-21
卷期号:10 (34): eadl5439-eadl5439
被引量:4
标识
DOI:10.1126/sciadv.adl5439
摘要
Robust perfect adaptation, a system property whereby a variable adapts to persistent perturbations at steady state, has been recently realized in living cells using genetic integral controllers. In certain scenarios, such controllers may lead to "integral windup," an adverse condition caused by saturating control elements, which manifests as error accumulation, poor dynamic performance, or instabilities. To mitigate this effect, we here introduce several biomolecular anti-windup topologies and link them to control-theoretic anti-windup strategies. This is achieved using a novel model reduction theory that we develop for reaction networks with fast sequestration reactions. We then show how the anti-windup topologies can be realized as reaction networks and propose intein-based genetic designs for their implementation. We validate our designs through simulations on various biological systems, including models of patients with type I diabetes and advanced biomolecular proportional-integral-derivative (PID) controllers, demonstrating their efficacy in mitigating windup effects and ensuring safety.
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