新冠肺炎大流行期间印度尼西亚区域经济状况:基于教学的模糊地理人口聚类分析

B. I. Nasution, Sri Indriyani Siregar
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引用次数: 2

摘要

2019冠状病毒病对印度尼西亚造成了影响,并导致2020年的经济衰退。印尼的经济状况应该通过区域经济状况来评价。一种著名的区域分析方法是使用模糊地理加权聚类(FGWC)进行地理人口分析。然而,FGWC对局部最优算法仍然很弱,因此有必要使用优化算法来增强它。本研究提出了一种新的方法来提高FGWC使用引出式教学为基础的优化(ETLBO)来分析印尼的区域经济状况。我们将ETLBO与FGWC中先前实现的优化算法进行了比较,例如粒子群优化(PSO)和智能萤火虫算法(IFA)。本研究发现,ETLBO在识别印尼区域经济状况方面表现良好。此外,聚类结果显示了问题行业的差异。我们还发现,爪哇岛各省组成了一个集群,在许多领域都存在问题。本研究可作为评价印尼区域经济状况的依据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Regional Economy Condition in Indonesia during COVID-19 Pandemic: An Analysis using Teaching Learning-Based Fuzzy Geodemographic Clustering
COVID-19 has impacted Indonesia and caused an economic recession during 2020. The economic condition in Indonesia should be evaluated through the regional economic condition. One well-known approach to do a regional analysis is a geodemographic analysis using Fuzzy Geographically Weighted Clustering (FGWC). However, FGWC is still weak against the local optima, so it is necessary to use an optimisation algorithm to enhance it. This study proposes a new approach of FGWC enhancement using Elicit Teaching-Learning Based Optimisation (ETLBO) to analyse the regional economic condition in Indonesia. We compare ETLBO with previously implemented optimisation algorithms in FGWC, such as Particle Swarm Optimisation (PSO) and Intelligent Firefly Algorithm (IFA). This study found that ETLBO performs well in identifying Indonesia’s regional economic condition. Moreover, the clustering results showed the difference of problematic sectors. We also found that the provinces in Java Island joined into a cluster and have problems in many sectors. This study can be used as the basis for the evaluation of regional economic conditions in Indonesia.
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