Developing and Applying an Urban Resilience Index for the Evaluation of Declining Areas: A Case Study of South Korea’s Urban Regeneration Sites
Abstract
1. Introduction
2. Background
2.1. Urban Decline and Regeneration
2.2. Urban Resilience
3. Methodology
3.1. Selection and Classification of Urban Resilience Evaluation Indicators
3.2. Results Indexing Using the Euclidean Distance
- In the case of one measurement indicator, the height of the Euclidean space is “0”. Thus, use the normalization measurement value.
- In the case of two measurement indicators, use the Euclidean norm of two measurement indicator values in the Euclidean space:
- In the case of three measurement indicators, use the Euclidean norm of three measurement indicator values in the Euclidean space:
- α is the measurement indicator value, Amax is the maximum value of measurement indicator, and Amin is the minimum value of measurement indicator.
- α is the measurement indicator value, Β is the maximum value within the range, and A is the minimum value within the range.
- Note: the range of the values does not impact the magnitude and position of the basis of value (Figure 3).
- 𝑠 is the set of {GRI-Vulnerability, GRI-Adaptability … ISS-Transformability}, and 𝑖 is the set of sites, is the j-th indicator of the .
3.3. Target Sites
3.4. Data
4. Results
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Organizations | RM | SS | AR | SAM | RE | GP | SA |
---|---|---|---|---|---|---|---|
OECD | - | ● | ● | ● | - | - | ● |
UN-HABITAT | - | ● | - | ● | ● | - | - |
International Council for Local Environmental | - | ● | ● | ● | ● | - | - |
United Nations Office for Disaster Risk Reduction | ● | - | ● | - | ● | - | - |
Rockefeller Foundation | - | ● | - | ● | - | ● | - |
World Bank | - | ● | - | ● | ● | - | - |
USAID | ● | ● | - | ● | ● | ● | - |
100 Resilient Cities | - | ● | - | ● | - | ● | - |
Resilient Europe | - | ● | - | - | ● | ● | - |
Global Alliance for Resilience | - | ● | ● | ● | ● | - | ● |
Large | Medium | Small | Indicators | Unit | ||
---|---|---|---|---|---|---|
GRI | Vulnerability | Disaster damage | GV-1 | Property damage from disaster | Total amount of property damage due to disasters in last 10 years | ₩ / m2 |
GV-2 | Human life damage from disaster | Total casualties due to disasters in last 10 years | No. of people / m2 | |||
Size of vulnerable area | GV-3 | Special purpose district | Combined area of the district | m2 | ||
Adaptability | Ecological adaptability | GA-1 | Open space | Percentage of open space area in urban planning facilities | % | |
GA-2 | Green parks and infrastructure | Proportion of green area and other green spaces | % | |||
Safety of buildings and structures | GA-3 | Aged building | Percentage of 20 years + old buildings | % | ||
GA-4 | Building density | Ratio of floor area of buildings in the target site | % | |||
GA-5 | Structural stability | Percentage of wooden or masonry structured buildings | % | |||
Transformability | Scalability of community facilities | GT-1 | Community facilities accessibility | Number of schools + public health centers + administrative facilities + parks | No. of facilities/m2 | |
GT-2 | Land ownership status | Ratio of publicly owned land | % | |||
Adequacy of response infrastructure | GT-3 | Road accessibility | Ratio of buildings adjacent to roads with a width of 4 m or more | % | ||
GT-4 | Accessibility to evacuation facilities | Number of civil defense evacuation facilities | No. of facilities/m2 | |||
ISS | Vulnerability | Population composition | IV-1 | Vulnerable population | Proportion of vulnerable population (age less than 14 and more than 65) | % |
IV-2 | Population change | Population change rate of a region in last 10 years | % | |||
Society and economy | IV-3 | Economically vulnerable class | Proportion of basic livelihood recipient + single-parent family beneficiary + foreign residents | % | ||
IV-4 | Small business owners | Percentage of small business owners | % | |||
Adaptability | Pre-emptive response system | IA-1 | Customized alarm system | Number of alarm systems and notification systems + CCTV | No. of systems/ 10,000 m2 | |
IA-2 | Vacant house maintenance project | Percentage of vacant houses | % | |||
Tailored (Emergency) support system | IA-3 | Emergency medical (protection) system | Area that can be opened for emergency medical support | m2/person | ||
IA-4 | Public safety management personnel | Local government safety management (police officers + firefighters + public officials dedicated to social welfare) personnel | No. of personnel/1,000 people | |||
Transformability | Availability of human resource | IT-1 | Disaster management budget | Average value of local government disaster management funds raised in last five years | ₩1M/1,000people | |
IT-2 | Volunteer | Number of local government registered volunteers | No. of volunteers/ 1,000 people | |||
Risk communication activity | IT-3 | Resident/Business/Socio-economic organization | Percentage of participants in the organization (such as residents, merchants, etc.) + subscribers to community mapping services | % | ||
IT-4 | Community activity spaces | Number of outdoor community places (chairs, tables, etc.) | No. of places/ 10,000 m2 |
Sites | Site A | Site B | Site C |
---|---|---|---|
Area: 174,452 m2 Project period: 2019~2022 | Area: 294,831 m2 Project period: 2017~2022 | Area: 109,000 m2 Project period: 2020~2023 | |
Comparative Site A | Comparative Site B | Comparative Site C | |
Area: 246,526 m2 | Area: 597,472 m2 | Area: 190,141 m2 |
Category | Site-A | Site-B | Site-C | |||||||||
---|---|---|---|---|---|---|---|---|---|---|---|---|
Preproject | Postproject | Preproject | Postproject | Preproject | Postproject | |||||||
Value | Grade | Value | Grade | Value | Grade | Value | Grade | Value | Grade | Value | Grade | |
GV-1 | 649.29 | 1 | 649.29 | 1 | 241.82 | 4 | 241.82 | 4 | 82.56 | 5 | 82.56 | 5 |
GV-2 | 7.48 | 1 | 7.48 | 1 | 1.95 | 3 | 1.95 | 3 | 0.29 | 5 | 0.29 | 5 |
GV-3 | 3.70 | 5 | 3.70 | 5 | 5.81 | 4 | 5.81 | 4 | 2.68 | 5 | 2.68 | 5 |
GA-1 | 0.00 | 1 | 0.79 | 1 | 0.00 | 1 | 3.10 | 3 | 0.00 | 1 | 4.04 | 3 |
GA-2 | 0.00 | 1 | 5.47 | 5 | 2.94 | 3 | 10.21 | 5 | 4.71 | 5 | 16.03 | 5 |
GA-3 | 87.55 | 2 | 87.55 | 2 | 80.23 | 2 | 80.23 | 2 | 89.17 | 2 | 89.17 | 2 |
GA-4 | 52.45 | 3 | 52.45 | 3 | 31.12 | 4 | 31.12 | 4 | 26.95 | 5 | 26.95 | 5 |
GA-5 | 22.49 | 1 | 22.49 | 1 | 40.82 | 1 | 40.82 | 1 | 13.38 | 1 | 13.38 | 1 |
GT-1 | 0.00 | 1 | 1.20 | 5 | 0.47 | 2 | 1.19 | 5 | 0.24 | 1 | 2.57 | 5 |
GT-2 | 30.50 | 3 | 30.50 | 3 | 32.21 | 3 | 32.21 | 3 | 19.14 | 1 | 19.14 | 1 |
GT-3 | 50.31 | 5 | 50.31 | 5 | 41.91 | 5 | 41.91 | 5 | 55.59 | 5 | 55.59 | 5 |
GT-4 | 0.00 | 1 | 0.00 | 1 | 0.00 | 1 | 0.00 | 1 | 0.00 | 1 | 0.00 | 1 |
IV-1 | 27.30 | 3 | 27.30 | 3 | 25.92 | 3 | 25.92 | 3 | 58.64 | 1 | 58.64 | 1 |
IV-2 | −23.81 | 1 | −23.81 | 1 | −25.47 | 1 | −25.47 | 1 | 1.46 | 5 | 1.46 | 5 |
IV-3 | 10.00 | 1 | 10.00 | 1 | 8.98 | 2 | 8.98 | 2 | 4.66 | 2 | 4.66 | 2 |
IV-4 | 54.90 | 1 | 54.90 | 1 | 59.58 | 1 | 59.58 | 1 | 50.32 | 1 | 50.32 | 1 |
IA-1 | 1.49 | 2 | 2.69 | 3 | 0.88 | 1 | 2.17 | 3 | 2.48 | 3 | 5.96 | 5 |
IA-2 | 6.90 | 3 | 6.90 | 3 | 11.98 | 1 | 11.98 | 1 | 0.51 | 5 | 0.51 | 5 |
IA-3 | 0.68 | 1 | 0.68 | 1 | 1.77 | 2 | 1.77 | 2 | 2.38 | 3 | 2.38 | 3 |
IA-4 | 4.83 | 3 | 4.83 | 3 | 4.19 | 3 | 4.19 | 3 | 3.25 | 2 | 3.25 | 2 |
IT-1 | 69.31 | 5 | 69.31 | 5 | 40.00 | 3 | 40.00 | 3 | 40.27 | 3 | 40.27 | 3 |
IT-2 | 245.66 | 1 | 245.66 | 1 | 196.34 | 1 | 196.34 | 1 | 266.49 | 2 | 266.49 | 2 |
IT-3 | 11.51 | 3 | 11.51 | 3 | 8.71 | 2 | 8.71 | 2 | 8.35 | 2 | 8.35 | 2 |
IT-4 | 2.58 | 4 | 3.10 | 5 | 0.78 | 1 | 1.15 | 1 | 2.57 | 4 | 3.12 | 5 |
Before Project | After Project | Comparative Group |
---|---|---|
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Kim, B.; Lee, G.-S.; Kim, M.; Lee, W.-S.; Choi, H.-S. Developing and Applying an Urban Resilience Index for the Evaluation of Declining Areas: A Case Study of South Korea’s Urban Regeneration Sites. Int. J. Environ. Res. Public Health 2023, 20, 3653. https://doi.org/10.3390/ijerph20043653
Kim B, Lee G-S, Kim M, Lee W-S, Choi H-S. Developing and Applying an Urban Resilience Index for the Evaluation of Declining Areas: A Case Study of South Korea’s Urban Regeneration Sites. International Journal of Environmental Research and Public Health. 2023; 20(4):3653. https://doi.org/10.3390/ijerph20043653
Chicago/Turabian StyleKim, Byungsuk, Gil-Sang Lee, Minjun Kim, Who-Seung Lee, and Hee-Sun Choi. 2023. "Developing and Applying an Urban Resilience Index for the Evaluation of Declining Areas: A Case Study of South Korea’s Urban Regeneration Sites" International Journal of Environmental Research and Public Health 20, no. 4: 3653. https://doi.org/10.3390/ijerph20043653
APA StyleKim, B., Lee, G.-S., Kim, M., Lee, W.-S., & Choi, H.-S. (2023). Developing and Applying an Urban Resilience Index for the Evaluation of Declining Areas: A Case Study of South Korea’s Urban Regeneration Sites. International Journal of Environmental Research and Public Health, 20(4), 3653. https://doi.org/10.3390/ijerph20043653