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Solving reservoir management problems with serially correlated inflows

机译:解决串行流入的水库管理问题

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This paper addresses the problem of determining the optimal daily operating policy of a small reservoir when the inflows are stochastic and multi-lag autocorrelated. This optimization problem is difficult to solve when the number of lags is large because each lag adds a state variable to the problem. The paper presents two methods which solve the problem in a very short time, whatever the number of lags. The first, which solves the optimization problem with stochastic dynamic programming, represents the multi-lag autocorrelation by a single hydrologic variable, whose value changes from day to day and is equal to the conditional mean of the daily inflow. The second uses a large set of inflow scenarios to determine the optimal warning curve for the reservoir. The optimal daily operating policy is shown to consist in maintaining the reservoir level on, or as close as possible to, that curve.
机译:本文解决了在流入随机且多滞环中时确定小水库的最佳日常运行政策的问题。当滞后的数量很大时,难以解决这种优化问题,因为每个滞后为问题增加了状态变量。本文呈现了两种方法,在很短的时间内解决了问题,无论滞后数量。第一个解决随机动态编程的优化问题,代表了单个水文变量的多滞后自相关,其值从日期变化,等于日常流入的条件均值。第二组使用大量流入场景来确定储层的最佳警告曲线。最佳日常运行策略显示在维持储层级别,或尽可能接近的曲线组成。

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