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Insang Song

Seoul National University · Environmental Science

About the Lab

Professor Insang Song's research lab specializes in geographical data science, focusing on the integration of spatial analysis, machine learning, and environmental health. The lab investigates air pollution exposure assessment using advanced prediction models and geographic information systems, with applications in public health and environmental justice. Key research directions include spatial autocorrelation in regression models, address uncertainty in health studies, and web-based visualization of environmental health data to enhance public understanding and policy communication.

spatial autocorrelationair pollution modelinggeographic information systemsenvironmental healthmachine learning in geography

Research Overview

Papers
32
Total Citations
199
Papers (5y)
19
Primary Field
Environmental Science

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
19total
2022
2023
2024
2025
2026
Citations per year (5y)
37total
20222023202420252026

Selected Papers

15
1
Article|60 citations·2017
National-scale exposure prediction for long-term concentrations of particulate matter and nitrogen dioxide in South Korea
Sun‐Young Kim, Insang Song
SJR Q1Environmental Pollution
Health, Toxicology and MutagenesisEnvironmental Science
2
Article|27 citations·2015
Computation of geographic variables for air pollution prediction models in South Korea
Youngseob Eum, Insang Song, Hwan‐Cheol Kim, Jong‐Han Leem, Sun‐Young Kim
Environmental Health and ToxicologyOA

Recent cohort studies have relied on exposure prediction models to estimate individuallevel air pollution concentrations because individual air pollution measurements are not available for cohort locations. For such prediction models, geographic variables related to pollution sources are important inputs. We demonstrated the computation process of geographic variables mostly recorded in 2010 at regulatory air pollution monitoring sites in South Korea. On the basis of previous studies, we finaliz

Health, Toxicology and MutagenesisEnvironmental Science
3
Article|16 citations·2021
Association of Poor Mental-Health Days With COVID-19 Infection Rates in the U.S.
Yusuf Ransome, Hui Luan, Insang Song, David A. Fiellin, Sandro Galea
SJR Q1American Journal of Preventive MedicineOA
Clinical PsychologyPsychology
4
Article|13 citations·2021
HIV Infection Prevalence Significantly Intersects With COVID-19 Infection At the Area Level: A US County-Level Analysis
Hui Luan, Insang Song, David A. Fiellin, Yusuf Ransome
SJR Q1JAIDS Journal of Acquired Immune Deficiency SyndromesOA

BACKGROUND: Limited empirical evidence exists about the extent to which the current HIV epidemic intersects with COVID-19 infections at the area/geographic level. Moreover, little is known about how demographic, social, economic, behavioral, and clinical determinants are jointly associated with these infectious diseases. SETTING: Contiguous US counties (N = 3108). METHODS: We conducted a cross-sectional analysis and investigated the joint association between new HIV infection prevalence in 2018

Modeling and SimulationMathematics
5
Article|12 citations·2016
Estimation of Representative Area-Level Concentrations of Particulate Matter(PM10) in Seoul, Korea
Insang Song
Journal of the Korean Association of Geographic Information Studies
Health, Toxicology and MutagenesisEnvironmental Science
6
Article|11 citations·2003
Isoflavone Content and Estrogen Activity in Arrowroot Puerariae Radix
Hee-Yun Kim, Jin-Hwan Hong, Dong-Sul Kim, Kil-Jin Kang, Sang‐Bae Han, Eun-Ju Lee, Hyung‐Wook Chung, Kyung-Hee Song, Kyung-A Sho, Seung-Jun Kwack, Soon-Sun Kim, Kui‐Lea Park
SJR Q2Food Science and Biotechnology
Pathology and Forensic MedicineMedicine
7
Article|10 citations·2020
Web-Based Visualization of Scientific Research Findings: National-Scale Distribution of Air Pollution in South Korea
Yeonkyeong Park, Insang Song, Jeeeun Yi, Seon-Ju Yi, Sun‐Young Kim
SJR Q2International Journal of Environmental Research and Public HealthOA

Background: As scientific findings of air pollution and subsequent health effects have been accumulating, public interest has also been growing. Accordingly, web visualization is suggested as an effective tool to facilitate public understanding in scientific evidence and to promote communication between the public and academia. We aimed to introduce an example of easy and effective web-based visualization of research findings, relying on predicted concentrations of particulate matter ≤ 10 µg/m3

Computer Vision and Pattern RecognitionComputer Science
8
Article|7 citations·2022
Three Common Machine Learning Algorithms Neither Enhance Prediction Accuracy Nor Reduce Spatial Autocorrelation in Residuals: An Analysis of Twenty‐five Socioeconomic Data Sets
Insang Song, Daehyun Kim
SJR Q1Geographical Analysis

Machine learning (ML) is being applied in an increasing volume of geographical research. However, the aspects of spatial autocorrelation (SAC) in the residuals produced by ML models have been understudied compared to the benefit of ML, namely, reduction of prediction errors. In this study, we examined the relationship between predictive accuracy and the reduction in the residual SAC for 597 variables from 25 geographical socio‐economic data sets using spatial and nonspatial cross‐validation of t

Economics and EconometricsEconomics, Econometrics and Finance
9
Article|6 citations·2022
Impact of limited residential address on health effect analysis of predicted air pollution in a simulation study
Yoon-Bae Jun, Insang Song, Ok‐Jin Kim, Sun‐Young Kim
SJR Q1Journal of Exposure Science & Environmental EpidemiologyOA

Abstract Background Recent epidemiological studies of air pollution have adopted spatially-resolved prediction models to estimate air pollution concentrations at people’s homes. However, the benefit of these models was limited in many studies that used existing health data relying on incomplete addresses resulting from confidentiality concerns or lack of interest when designed. Objective This simulation study aimed to understand the impact of incomplete addresses on health effect estimation base

Health, Toxicology and MutagenesisEnvironmental Science
11
Article|5 citations·2023
Localized effects of neighborhood park exposure on mental illness mortality in the Pacific Northwest United States
Insang Song, Hui Luan
SJR Q1Applied Geography
Health, Toxicology and MutagenesisEnvironmental Science
12
Article|5 citations·2020
Predicting Model Improvement by Accounting for Spatial Autocorrelation: A Socioeconomic Perspective
Daehyun Kim, Insang Song
SJR Q2The Professional Geographer

In geographical literature, numerous studies have demonstrated the differences that arise if spatial autocorrelation (SAC) is incorporated into a conventional nonspatial modeling procedure, but little is known about when these differences might be magnified. This study addressed this query by conducting two sets of regression modeling for 561 variables representing housing prices, metropolitan industry, health, crime, education, and (un)employment across various parts of the United States: (1) n

Economics and EconometricsEconomics, Econometrics and Finance
13
Article|4 citations·2023
Changes in spatial clusters of cancer incidence and mortality over 15 years in South Korea: Implication to cancer control
Cham Thi Nguyen, Insang Song, Inkyung Jung, Yoon‐Jung Choi, Sun‐Young Kim
SJR Q1Cancer MedicineOA

BACKGROUND: The temporal investigation of high-risk areas of cancer incidence and mortality can provide practical implications in cancer control. We aimed to investigate the changes in spatial clusters of incidence and mortality from 1999 through 2013 by major cancer types in South Korea. METHODS: We applied flexible scan statistics to identify spatial clusters of cancer incidence and mortality by three 5-year periods and seven major cancer types using the counts of new cases and deaths and popu

EpidemiologyMedicine
14
Article|4 citations·2019
Recolonization of native and invasive plants after large-scale clearance of a temperate coastal dunefield
Daehyun Kim, Jung‐Yun Lee, Jongcheol Seo, Insang Song
SJR Q1Applied Geography
Nature and Landscape ConservationEnvironmental Science
15
Article|4 citations·2023
Role of geographic characteristics in the spatial cluster detection of cancer: Evidence in South Korea, 1999–2013
Insang Song, Eun‐Hye Yoo, Inkyung Jung, Jin‐Kyoung Oh, Sun‐Young Kim
SJR Q1Environmental Research
EpidemiologyMedicine

Research Areas

Health, Toxicology and MutagenesisGeneral Health ProfessionsEnvironmental EngineeringEconomics and EconometricsEpidemiologyArtificial Intelligence

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