Urban Equity as a Challenge for the Southern Europe Historic Cities: Sustainability-Urban Morphology Interrelation through GIS Tools
Abstract
:1. Introduction
Justification for the Study
2. Materials and Methods
2.1. Study Area
2.2. Variables and Data Sources
2.2.1. Land Occupation
2.2.2. Public Space and Habitability
- Basic equipment (<600 m);
- Proximity commercial activities (<300 m);
- Mobility networks (<300 m);
- Green spaces (<200 m).
2.2.3. Mobility and Services
2.2.4. Urban Complexity
2.3. Spatial GIS Analysis
3. Results
3.1. Land Occupation
3.1.1. Dwellings Density
3.1.2. Absolute Compactness
3.2. Public Space and Habitability
3.2.1. Corrected Compactness
3.2.2. Air Quality
3.2.3. Acoustic Comfort
3.2.4. Road Accessibility
3.2.5. Proximity of Population to Basic Services
3.3. Mobility and Services
3.3.1. Population Movement Mode
3.3.2. Public Road Distribution
3.3.3. Off-Street Parking for Private Vehicles
3.4. Urban Complexity
Balance between Activity and Residency
4. Discussion
Research Limitations and Future Recommendations
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Acknowledgments
Conflicts of Interest
References
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Scope | Indicator | Description | References |
---|---|---|---|
Land occupation | Dwellings density | It determines the potential population of a territory and the efficient development of urban functions. | [42,43,44] |
Absolute compactness | Ensures resource efficiency, less pressure on systems and greater social cohesion. | [9,45,46] | |
Public space and habitability | Corrected compactness | Calculate the balance between built-up and living space. | |
Air quality | Calculates exposure to nitrogen dioxide (NO2), tropospheric ozone (O3), particulate matter (PM10) and sulphur dioxide (SO2). | [21,47,48] | |
Acoustic comfort | Detects the areas where the population is exposed to the greatest noise impact, mainly due to transport. | [49,50] | |
Road accessibility | The width and gradient of the pedestrian walkway is measured considering people with reduced mobility. | [51,52] | |
Proximity of population to basic services | It defines simultaneous access to basic facilities, commercial activities, sustainable mobility networks and green infrastructure. | [53,54] | |
Mobility and Services | Population movement mode | Calculate the sustainability of the modal split of the population. | [55] |
Public road distribution | Calculate the proportion of public space allocated to pedestrians. | [56,57,58] | |
Off-street parking for private vehicles | Calculates the percentage of off-street parking spaces with access to the network. | [59,60] | |
Urban Complexity | Balance between activity and residency | It defines the mix of urban functions and uses in the same residential space, generating patterns of proximity to everyday needs. | [61,62] |
Scope | Indicator | Calculation Formula |
---|---|---|
Land occupation | Housing density | Ddwelling (dwellings/ha) = number of dwellings/ha |
Absolute compactness | Cabs (m) = Built-up volume/ha |
SO2 | PM10 | O3 | NO2 | Index Category | ||||
---|---|---|---|---|---|---|---|---|
0 | 100 | 0 | 20 | 0 | 50 | 0 | 40 | Good |
101 | 200 | 21 | 40 | 51 | 100 | 41 | 90 | Reasonably good |
201 | 350 | 41 | 50 | 101 | 130 | 91 | 120 | Regular |
351 | 500 | 51 | 100 | 131 | 240 | 121 | 230 | Unfavourable |
501 | 750 | 101 | 150 | 241 | 380 | 231 | 340 | Very unfavourable |
751–1250 | 151–1200 | 381–800 | 341–1000 | Extremely unfavourable |
Scope | Indicator | Calculation Formula |
---|---|---|
Public space and habitability | Corrected compactnessm | Ccor (m) = Built-up volume/public living space |
Air quality | Cair (μg/m3) = Levels of NO2, O3, PM10 and SO2 | |
Acoustic comfort | Cacoustic (dB) = Acoustic comfort levels | |
Road accessibility | Aroad (m) = Street sections (linear meters) with sufficient, good or excellent accessibility | |
Proximity of population to basic services | Pservices (Nº of services) = Simultaneous coverage of basic facilities, local commercial services, mobility services and green space services. |
Scope | Indicator | Calculation Formula |
---|---|---|
Mobility andServices | Population movement mode | RMprivate (%) = Journeys by type |
Public road distribution | Vpedestrians (%) = Pedestrian road surface area/Public road surface area | |
Off-street parking for private vehicles | APVehicles (%) = Off-street parking spaces/total number of spaces |
Scope | Indicator | Calculation Formula |
---|---|---|
Urban Complexity | Balance between activity and residency | Eqact (%) = Superficie construida (m2c) de uso terciario/Superficie construida total |
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Jiménez-Espada, M.; García, F.M.M.; González-Escobar, R. Urban Equity as a Challenge for the Southern Europe Historic Cities: Sustainability-Urban Morphology Interrelation through GIS Tools. Land 2022, 11, 1929. https://doi.org/10.3390/land11111929
Jiménez-Espada M, García FMM, González-Escobar R. Urban Equity as a Challenge for the Southern Europe Historic Cities: Sustainability-Urban Morphology Interrelation through GIS Tools. Land. 2022; 11(11):1929. https://doi.org/10.3390/land11111929
Chicago/Turabian StyleJiménez-Espada, Montaña, Francisco Manuel Martínez García, and Rafael González-Escobar. 2022. "Urban Equity as a Challenge for the Southern Europe Historic Cities: Sustainability-Urban Morphology Interrelation through GIS Tools" Land 11, no. 11: 1929. https://doi.org/10.3390/land11111929
APA StyleJiménez-Espada, M., García, F. M. M., & González-Escobar, R. (2022). Urban Equity as a Challenge for the Southern Europe Historic Cities: Sustainability-Urban Morphology Interrelation through GIS Tools. Land, 11(11), 1929. https://doi.org/10.3390/land11111929