Plenary talk: Resilience and risk in networked systems

M. Dahleh
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Abstract

We will present recent work on the resilience and risk of failure emerging in cyber-physical infrastructures such as smart transportation systems and the smart grid. In the first part of the talk, we present results on the volatility and risk of failure associated with real-time response in the future smart grid. Real-time demand response has been postulated as the solution to the intermittency problem created by renewable generation. The proposed market architecture is simple, namely, consumers react directly to spot market prices in order to fulfill their demands. This mechanism creates a closed loop system between price and demand that has implications on efficiency, demand and price volatility, and risk of demand spikes. In this talk, we first present an analysis of this closed loop system for homogeneous consumers and highlight the tradeoffs between market efficiency and demand and price volatility. Then, we present an abstracted framework to analyze the tradeoffs between efficiency and risk for heterogeneous consumers in the presence of shiftable demands. In this context, we expand the market mechanism to study the impact of coordination on such a tradeoff. We show that although the non-cooperative load-shifting scheme leads to an efficiency loss (otherwise known as the price of anarchy), the scheme has a smaller tail probability of the aggregate unshiftable demand distribution than cooperative schemes. This tail distribution is important as it corresponds to rare and undesirable demand spikes. Such instances highlight the role of the market mechanisms in striking a balance between efficiency and risk in real-time markets. In the second part of the talk, we present results on the robustness (resilience) properticlosedes of transportation networks for various agents' route-choice behavior. We perform the analysis within a dynamical system framework over a directed acyclic graph between a single origin-destination pair. We give a precise characterization of various margins of resilience of the network with respect to the topology, `pre-disturbance' equilibrium, and agents' local route-choice behavior. We show that the cooperative route choice behavior is maximally resilient in this setting. We also setup a simple convex optimization problem to find the most resilient `pre-disturbance' equilibrium for the network and determine link-wise tolls that yield such an equilibrium. Finally, we extend the analysis to link-wise outflow functions that accommodate the possibility of cascaded failures and study the effect of such phenomena on the margins of resilience of the network.
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全体会议演讲:网络系统中的弹性和风险
我们将介绍最近在网络物理基础设施(如智能交通系统和智能电网)中出现的弹性和故障风险方面的工作。在演讲的第一部分,我们展示了未来智能电网中与实时响应相关的波动性和故障风险的结果。实时需求响应被认为是解决可再生能源发电造成的间歇性问题的方法。所提出的市场架构很简单,即消费者直接对现货市场价格做出反应,以满足他们的需求。这种机制在价格和需求之间创造了一个闭环系统,对效率、需求和价格波动以及需求飙升的风险都有影响。在这次演讲中,我们首先对同质消费者的闭环系统进行了分析,并强调了市场效率与需求和价格波动之间的权衡。然后,我们提出了一个抽象的框架来分析存在可转移需求的异质性消费者的效率和风险权衡。在此背景下,我们扩展了市场机制来研究协调对这种权衡的影响。研究表明,尽管非合作负荷转移方案会导致效率损失(也称为无政府状态的代价),但该方案的总不可转移需求分布的尾部概率小于合作方案。这种尾部分布很重要,因为它对应于罕见且不受欢迎的需求峰值。这些例子突出了市场机制在实时市场中在效率和风险之间取得平衡方面的作用。在演讲的第二部分,我们展示了关于交通网络的鲁棒性(弹性)特性的结果,这些特性适用于各种智能体的路线选择行为。我们在一个动力系统框架内对单个原点-目的地对之间的有向无环图进行分析。我们给出了关于拓扑、“预扰动”均衡和代理的局部路径选择行为的网络弹性的各种边际的精确特征。研究表明,在这种情况下,合作路径选择行为具有最大的弹性。我们还设置了一个简单的凸优化问题,以找到网络最具弹性的“预干扰”平衡,并确定产生这种平衡的链路方向收费。最后,我们将分析扩展到适应级联故障可能性的链路流出函数,并研究这种现象对网络弹性边际的影响。
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