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근린환경 특성과 도시활력의 비선형 관계 분석 : 해석 가능성 기반 기계학습 모형의 적용Analysis of the Nonlinear Relationships between Neighborhood Environmental Characteristics and Urban Vitality : Applications of Interpretability-based Machine Learning Model

Other Titles
Analysis of the Nonlinear Relationships between Neighborhood Environmental Characteristics and Urban Vitality : Applications of Interpretability-based Machine Learning Model
Authors
조월김선재이수기
Issue Date
Aug-2025
Publisher
대한국토·도시계획학회
Keywords
Urban Vitality; De Facto Population; eXplainable Artificial Intelligence; Points-Of-Interest; Shapley Index; 도시활력; 생활인구; 해석가능한 인공지능; 관심시설; Shapley Index
Citation
국토계획, v.60, no.4, pp 188 - 203
Pages
16
Indexed
KCI
Journal Title
국토계획
Volume
60
Number
4
Start Page
188
End Page
203
URI
https://scholarworks.bwise.kr/hanyang/handle/2021.sw.hanyang/208902
DOI
10.17208/jkpa.2025.08.60.4.188
ISSN
1226-7147
2383-9171
Abstract
본 연구는 도시 공간 빅데이터와 설명 가능한 인공지능(eXplainable Artificial Intelligence, XAI) 기법을 활용하여도시활력에 영향을 미치는 근린환경 특성을 도출하고자 한다. 특히, 도시활력에 영향을 미치는 환경 요인의 비선형적 임곗값을규명함으로써, 특정 임곗값을 기준으로 도시활력 증진을 위한 정책적 시사점을 제시할 수 있다. 이를 통해 본 연구는 도시활력 제고를 위한 실효성 있는 도시계획 및 정책 수립을 위한 과학적 근거를 제공하고, 도시활력 증진과 사회적 교류 활성화를 위한 공간적 전략을 도출하는 데 기여하고자 한다.
Creating a vibrant neighborhood environment is a key component of sustainable urban development. Urban theorist Jane Jacobs explains that urban vitality occurs through the interactions of human activities with neighborhood environments. Drawing on the recent development of big data and machine learning technologies, this study analyzes the impact of neighborhood environmental factors on urban vitality. This study utilizes big data such as De Facto Population, Points-Of-Interest (POI), and Street View images for the city of Seoul and employs a machine learning model to understand urban vitality. It derives key variables that affect urban vitality and checks the nonlinear relationships between variables by utilizing explainable machine learning model. The main analysis results are as follows. It also indicates that land use characteristics and POI show strong associations with urban vitality. Specifically, SHapley Additive exPlanations (SHAP) analysis results confirm that the independent variables largely show nonlinear relationships with urban vitality. Moreover, the study identified critical thresholds for variables such as residential area density and distance to subway stations, beyond which their impact on urban vitality becomes constant. This study is significant because it provides a clearer understanding of the key neighborhood environmental factors that affect urban vitality. Furthermore, this study offers planning and policy implications that promoting urban vitality and social interaction.
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