首页> 美国卫生研究院文献>International Journal of Environmental Research and Public Health >Spatial Optimization of Residential Care Facility Configuration Based on the Integration of Modified Immune Algorithm and GIS: A Case Study of Jing’an District in Shanghai China
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Spatial Optimization of Residential Care Facility Configuration Based on the Integration of Modified Immune Algorithm and GIS: A Case Study of Jing’an District in Shanghai China

机译:基于改性免疫算法与GIS集成的住宅护理设施配置的空间优化 - 以中国上海静安区为例

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摘要

As the population is aging rapidly, the irrationality of residential care facility (RCF) configuration has impacted the efficiency and quality of the aged care services so significantly that the optimization of RCF configuration is urgently required. A multi-objective spatial optimization model for the RCF configuration is developed by considering the demands of three stakeholders, including the government, the elderly, and the investor. A modified immune algorithm (MIA) is implemented to find the optimal solutions, and the geographic information system (GIS) is used to extract information on spatial relationships and visually display optimization results. Jing’an District, part of Shanghai, China, is analyzed as a case study to demonstrate the advantages of this integrated approach. The configuration rationality of existing residential care facilities (RCFs) is analyzed, and a detailed recommendation for optimization is proposed. The results indicate that the number of existing RCFs is deficient; the locations of some RCFs are unreasonable, and there is a large gap between the service supply of existing RCFs and the demands of the elderly. To fully meet the care demands of the elderly, 6 new facilities containing 1193 beds are needed to be added. In comparison with the optimization results of other algorithms, MIA is superior in terms of the calculation accuracy and convergence rate. Based on the integration of MIA and GIS, the quantity, locations, and scale of RCFs can be optimized simultaneously, effectively, and comprehensively. The optimization scheme has improved the equity and efficiency of RCF configuration, increased the profits of investors, and reduced the travel costs of the elderly. The proposed method and optimization results have reference value for policy-making and planning of RCFs as well as other public service facilities.
机译:随着人口迅速衰老,住宅护理设施(RCF)配置的非理性对老年护理服务的效率和质量显着影响了迫切需要RCF配置的优化。通过考虑三个利益相关者,包括政府,老年人和投资者,开发了用于RCF配置的多目标空间优化模型。实施了修改过的免疫算法(MIA)以找到最佳解决方案,地理信息系统(GIS)用于提取关于空间关系的信息和视觉上显示优化结果。中国上海的一部分是静安区,作为案例研究,以证明这种综合方法的优势。分析了现有住宅护理设施(RCF)的配置合理性,提出了详细的优化建议。结果表明现有RCF的数量不足;一些RCF的位置是不合理的,现有RCF的服务供应与老年人的需求之间存在巨大差距。为了充分满足老年人的护理需求,需要添加6张含有1193张床的新设施。与其他算法的优化结果相比,MIA在计算精度和收敛速率方面优越。基于MIA和GIS的集成,RCF的数量,位置和规模可以同时,有效地,并全面地优化。优化方案提高了RCF配置的股权和效率,增加了投资者的利润,并降低了老年人的旅行费用。拟议的方法和优化结果具有参考价值,以便对RCFS以及其他公共服务设施的策略制定和规划。

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