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학술논문프로젝트경영연구2025.08 발행

공공데이터를 활용한 인구수 및 경쟁도 기반의 중식당 입지 최적화 분석

Analysis of Chinese Restaurant Location Optimization based on Population and Competitiveness using Public Data

김봉현(서원대학교)

5권 2호, 36~48쪽

초록

This study proposes a data-driven model for optimizing the location of Chinese restaurants, a critical determinant of success in the highly competitive food service industry. Using public data provided by the Korean government—including resident registration statistics and restaurant business records—the analysis quantifies the saturation of Chinese restaurants across administrative districts in South Korea. Two indices are defined: the Saturation Index (number of Chinese restaurants per 10,000 residents) and the Competitiveness Index (proportion of Chinese restaurants among all food service businesses). Data preprocessing and analysis were conducted in Python, with visualization facilitated by Pandas, Matplotlib, and Seaborn. The results reveal regional disparities: for example, Gwacheon and Sejong exhibited low saturation levels, indicating substantial market potential, while districts such as Gangnam in Seoul and Haeundae in Busan were oversaturated. The findings demonstrate the practical utility of public data in entrepreneurial decision-making and present a reproducible analytical framework that can be extended to other restaurant types or industries. This approach advances location selection from intuition-driven to evidence-based, quantitative analysis.

Abstract

This study proposes a data-driven model for optimizing the location of Chinese restaurants, a critical determinant of success in the highly competitive food service industry. Using public data provided by the Korean government—including resident registration statistics and restaurant business records—the analysis quantifies the saturation of Chinese restaurants across administrative districts in South Korea. Two indices are defined: the Saturation Index (number of Chinese restaurants per 10,000 residents) and the Competitiveness Index (proportion of Chinese restaurants among all food service businesses). Data preprocessing and analysis were conducted in Python, with visualization facilitated by Pandas, Matplotlib, and Seaborn. The results reveal regional disparities: for example, Gwacheon and Sejong exhibited low saturation levels, indicating substantial market potential, while districts such as Gangnam in Seoul and Haeundae in Busan were oversaturated. The findings demonstrate the practical utility of public data in entrepreneurial decision-making and present a reproducible analytical framework that can be extended to other restaurant types or industries. This approach advances location selection from intuition-driven to evidence-based, quantitative analysis.

발행기관:
사단법인 한국프로젝트경영학회
DOI:
http://dx.doi.org/10.52890/PMR.2025.5.2.4
분류:
경영학

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공공데이터를 활용한 인구수 및 경쟁도 기반의 중식당 입지 최적화 분석 | 프로젝트경영연구 2025 | AskLaw | 애스크로 AI