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Robust strategy synthesis for probabilistic systems applied to risk-limiting renewable-energy pricing

机译:适用于风险限制可再生能源定价的概率系统的鲁棒策略综合

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We address the problem of synthesizing control strategies for Ellipsoidal Markov Decision Processes (EMDP), i.e., MDPs whose transition probabilities are expressed using ellipsoidal uncertainty sets. The synthesized strategy aims to maximize the total expected reward of the EMDP, constrained to a specification expressed in Probabilistic Computation Tree Logic (PCTL). We prove that the EMDP strategy synthesis problem for the fragment of PCTL disabling operators with a finite time bound is NP-complete and propose a novel sound and complete algorithm to solve it. We apply these results to the problem of synthesizing optimal energy pricing and dispatch strategies in smart grids that integrate renewable sources of energy. We use rewards to maximize the profit of the network operator and a PCTL specification to constrain the risk of power unbalance and guarantee quality-of-service for the users. The EMDP model used to represent the decision-making scenario was trained with measured data and quantitatively captures the uncertainty in the prediction of energy generation. An experimental comparison shows the effectiveness of our method with respect to previous approaches presented in the literature.
机译:我们解决了合成椭球马尔可夫决策过程(EMDP)的控制策略的问题,即使用椭圆形不确定性套件表达过渡概率的MDP。合成的策略旨在最大限度地提高EMDP的总预期奖励,约束为概率计算树逻辑(PCTL)中表达的规范。我们证明了PCTL禁用运营商的片段的EMDP策略综合问题是NP-Complete,并提出了一种新的声音和完整的算法来解决它。我们将这些结果应用于综合最佳能源定价和派遣策略的问题,以整合可再生能源的智能电网。我们用奖励来最大化网络运营商和PCTL规范的利润来约束权力失衡和保证质量的服务,为用户的风险。用于表示决策方案的EMDP模型被测量数据培训,并且定量地捕获能量产生预测中的不确定性。实验比较显示了我们对文献中提出的先前方法的效果。

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