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Application of Particle Swarm Optimization Algorithm in the Heating System Planning Problem

机译:粒子群算法在供热系统规划中的应用

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摘要

Based on the life cycle cost (LCC) approach, this paper presents an integral mathematical model and particle swarm optimization (PSO) algorithm for the heating system planning (HSP) problem. The proposed mathematical model minimizes the cost of heating system as the objective for a given life cycle time. For the particularity of HSP problem, the general particle swarm optimization algorithm was improved. An actual case study was calculated to check its feasibility in practical use. The results show that the improved particle swarm optimization (IPSO) algorithm can more preferably solve the HSP problem than PSO algorithm. Moreover, the results also present the potential to provide useful information when making decisions in the practical planning process. Therefore, it is believed that if this approach is applied correctly and in combination with other elements, it can become a powerful and effective optimization tool for HSP problem.
机译:基于生命周期成本(LCC)方法,本文针对加热系统规划(HSP)问题提出了完整的数学模型和粒子群优化(PSO)算法。在给定的生命周期时间内,所提出的数学模型将供暖系统的成本降至最低。针对HSP问题的特殊性,对通用粒子群算法进行了改进。计算了实际案例研究,以检查其在实际使用中的可行性。结果表明,与PSO算法相比,改进的粒子群算法(IPSO)更能解决HSP问题。此外,结果还表明在实际规划过程中做出决策时可能提供有用的信息。因此,可以相信,如果正确地应用此方法并与其他元素结合使用,它将成为解决HSP问题的强大而有效的优化工具。

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