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Genetic algorithms for the sequential irrigation scheduling problem.

机译:遗传算法用于顺序灌溉调度问题。

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A sequential irrigation scheduling problem is the problem of preparing a schedule to sequentially service a set of water users. This problem has an analogy with the classical single machine earliness/tardiness scheduling problem in operations research. In previously published work, integer program and heuristics were used to solve sequential irrigation scheduling problems; however, such scheduling problems belong to a class of combinatorial optimization problems known to be computationally demanding (NP-hard). This is widely reported in operations research. Hence, integer program can only be used to solve relatively small problems usually in a research environment where considerable computational resources and time can be allocated to solve a single schedule. For practical applications, metaheuristics such as genetic algorithms (GA), simulated annealing, or tabu search methods need to be used. These need to be formulated carefully and tested thoroughly. The current research is to explore the potential of GA to solve the sequential irrigation scheduling problems. Four GA models are presented that model four different sequential irrigation scenarios. The GA models are tested extensively for a range of problem sizes, and the solution quality is compared against solutions from integer programs and heuristics. The GA is applied to the practical engineering problem of scheduling water scheduling to 94 water users.
机译:顺序灌溉计划问题是准备时间表以顺序服务一组用水户的问题。该问题与运筹学中的经典单机提前/拖后调度问题类似。在先前发表的工作中,使用整数程序和启发式方法来解决顺序灌溉调度问题;但是,这样的调度问题属于一类组合优化问题,已知是计算上的需求(NP-hard)。这在运筹学中被广泛报道。因此,通常只能在研究环境中使用整数程序来解决相对较小的问题,在研究环境中,可以分配大量的计算资源和时间来解决单个计划。对于实际应用,需要使用元启发式算法,例如遗传算法(GA),模拟退火或禁忌搜索方法。这些需要仔细制定并进行彻底测试。当前的研究是探索遗传算法解决顺序灌溉调度问题的潜力。提出了四个GA模型,可以对四个不同的顺序灌溉方案进行建模。 GA模型针对各种问题大小进行了广泛测试,并将解决方案质量与整数程序和启发式方法的解决方案进行了比较。遗传算法应用于将工程调度到94个用水户的实际工程问题。

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