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