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Using a particle swarm optimization approach to examine a competitive production situation constrained by sustainable levels of pollution

机译:利用粒子群优化方法检查受可持续污染水平的竞争性生产情况

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This paper presents an algorithmic approach to determine an equilibrium solution to a non-cooperative duopoly game where sustainable pollution constraints exist. In contrast to an analytical approach, which typically requires simplifying assumptions such as linear demand and linear cost functions, we use a composite particle swarm optimization technique to determine the equilibrium values. This approach has the advantage that it can deal with and find optimum values for non-linear functions. In the paper we specifically include production constraints due to pollution. We solve a benchmark problem and compare the results obtained from particle swarm optimization approach with those obtained analytically thus demonstrating that the algorithmic approach is resilient and rigorous.
机译:本文介绍了一种算法方法,可以确定对存在可持续污染限制的非合作双垄游戏的均衡解决方案。与通常需要简化诸如线性需求和线性成本函数的假设的分析方法相反,我们使用复合粒子群优化技术来确定平衡值。这种方法具有它可以处理的优势,并找到非线性函数的最佳值。在论文中,我们专门包括由于污染而包括生产限制。我们解决了基准问题,并比较了从粒子群优化方法获得的结果与分析上获得的结果,从而证明算法方法是有弹性和严格的。

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