基于代理点的覆盖连续空间需求建模方法研究

Pei-Shan Hsieh, Wei-Hua Lin, Mingyao Qi, D. Tong
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引用次数: 0

摘要

设施选址问题在交通运输领域有着广泛的应用,从电动汽车充电站的选址到应急车辆的定位。空间设施选址问题(SFLP)考虑的是一个地区的连续需求,在这个地区,设施可以放置在任何地方。求解SFLP的方法之一是先将需求聚合为离散点,然后作为代理模型求解相应的基于点的FLP。然而,模型的性能是通过实际覆盖的连续空间的百分比来衡量的。典型FLP的解决方案通常不是唯一的。在本文中,我们探讨了FLP解的行为如何影响空间需求覆盖的质量。我们详细研究了替代模型的性质,并确定了影响原始覆盖问题解决方案质量的关键因素,以满足连续的空间需求。我们的目标是找到一个代理模型,该模型足够详细,可以捕获问题的所有关键元素,并达到所需的精度级别,同时具有现有计算能力可以处理的大小。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Investigating Surrogate Point-Based Modeling Approach for Covering Continuous Spatial Demand
The facility location problem (FLP) has broad applications in transportation, ranging from siting electric vehicle charging stations to positioning emergency vehicles. The spatial facility location problem (SFLP) considers continuous demand of a region where facilities can be placed anywhere. One of the approaches to solving the SFLP is to aggregate the demand into discrete points first and then solve the corresponding point-based FLP as a surrogate model. The model performance, however, is measured by the percentage of the continuous space actually covered. The solution to the classic FLP is often not unique. In this paper, we explore how the behavior of the solution to the FLP would affect the quality of the coverage to the spatial demand. We examine in detail the property of the surrogate model and identify the key contributing factor that would affect the quality of the solution to the original coverage problem for covering continuous spatial demand. Our goal is to find a surrogate model that is detailed enough to capture all the key elements of the problem and achieve the desired accuracy level, yet has the size that can be handled by the existing computing power.
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