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Bayesian Optimization Algorithm with Agent-based Supply Chain Simulator for Multi-echelon Inventory Management

机译:基于Agent的供应链模拟器多级库存管理贝叶斯优化算法。

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Supply chain inventory optimization is essential to ensure supply chain efficiency and to increase customer satisfaction. However, it is challenging because of the inherent uncertainties and complex dynamics in real-world supply chains. Researchers and practitioners have turned to simulation-based optimization methods to solve analytically intractable multi-echelon inventory optimization problems. Whereas, simulation-based optimization methods are usually computationally expensive. An efficient optimization procedure will greatly enhance the applicability of these methods. In this paper, we propose a Bayesian optimization approach along with an agent-based supply chain simulator to solve a constrained multi-echelon inventory optimization problem that requires fewer number of interactions with the simulator. Our proposed approach is compared with the most popularly used algorithm, genetic algorithm (GA). The experimental results demonstrate that the proposed method converges to the optimal solution significantly faster than GA.
机译:供应链库存优化对于确保供应链效率和提高客户满意度至关重要。但是,由于现实世界中的供应链存在固有的不确定性和复杂的动态变化,因此具有挑战性。研究人员和从业人员已转向基于模拟的优化方法,以解决分析上难以解决的多级库存优化问题。然而,基于仿真的优化方法通常在计算上昂贵。有效的优化程序将大大增强这些方法的适用性。在本文中,我们提出了一种贝叶斯优化方法以及基于代理的供应链仿真器,以解决需要较少数量与仿真器交互的受限多级库存优化问题。我们提出的方法与最常用的算法遗传算法(GA)进行了比较。实验结果表明,所提出的方法收敛到最优解的速度明显快于GA。

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