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Enhancing Urban Resilience: Smart City Data Analyses, Forecasts, and Digital Twin Techniques at the Neighborhood Level
by
Kotsiantis, Sotiris
, Gkontzis, Andreas F.
, Feretzakis, Georgios
, Verykios, Vassilios S.
in
Artificial intelligence
/ Cities
/ Citizen participation
/ Community support
/ Data analysis
/ Data transmission
/ Decision making
/ Digital twins
/ Empowerment
/ Energy consumption
/ Forecasts and trends
/ Geospatial data
/ Infrastructure
/ Internet
/ Machine learning
/ Mathematical analysis
/ Methods
/ Monitoring
/ Neighborhoods
/ Prediction models
/ predictive analytics
/ Public services
/ Real time
/ Research methodology
/ Resilience
/ Simulation
/ Simulation methods
/ Smart cities
/ Software
/ Sustainable urban development
/ Trends
/ Urban development
/ Urban environments
/ Urban planning
/ urban resilience
2024
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Enhancing Urban Resilience: Smart City Data Analyses, Forecasts, and Digital Twin Techniques at the Neighborhood Level
by
Kotsiantis, Sotiris
, Gkontzis, Andreas F.
, Feretzakis, Georgios
, Verykios, Vassilios S.
in
Artificial intelligence
/ Cities
/ Citizen participation
/ Community support
/ Data analysis
/ Data transmission
/ Decision making
/ Digital twins
/ Empowerment
/ Energy consumption
/ Forecasts and trends
/ Geospatial data
/ Infrastructure
/ Internet
/ Machine learning
/ Mathematical analysis
/ Methods
/ Monitoring
/ Neighborhoods
/ Prediction models
/ predictive analytics
/ Public services
/ Real time
/ Research methodology
/ Resilience
/ Simulation
/ Simulation methods
/ Smart cities
/ Software
/ Sustainable urban development
/ Trends
/ Urban development
/ Urban environments
/ Urban planning
/ urban resilience
2024
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Do you wish to request the book?
Enhancing Urban Resilience: Smart City Data Analyses, Forecasts, and Digital Twin Techniques at the Neighborhood Level
by
Kotsiantis, Sotiris
, Gkontzis, Andreas F.
, Feretzakis, Georgios
, Verykios, Vassilios S.
in
Artificial intelligence
/ Cities
/ Citizen participation
/ Community support
/ Data analysis
/ Data transmission
/ Decision making
/ Digital twins
/ Empowerment
/ Energy consumption
/ Forecasts and trends
/ Geospatial data
/ Infrastructure
/ Internet
/ Machine learning
/ Mathematical analysis
/ Methods
/ Monitoring
/ Neighborhoods
/ Prediction models
/ predictive analytics
/ Public services
/ Real time
/ Research methodology
/ Resilience
/ Simulation
/ Simulation methods
/ Smart cities
/ Software
/ Sustainable urban development
/ Trends
/ Urban development
/ Urban environments
/ Urban planning
/ urban resilience
2024
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Enhancing Urban Resilience: Smart City Data Analyses, Forecasts, and Digital Twin Techniques at the Neighborhood Level
Journal Article
Enhancing Urban Resilience: Smart City Data Analyses, Forecasts, and Digital Twin Techniques at the Neighborhood Level
2024
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Overview
Smart cities, leveraging advanced data analytics, predictive models, and digital twin techniques, offer a transformative model for sustainable urban development. Predictive analytics is critical to proactive planning, enabling cities to adapt to evolving challenges. Concurrently, digital twin techniques provide a virtual replica of the urban environment, fostering real-time monitoring, simulation, and analysis of urban systems. This study underscores the significance of real-time monitoring, simulation, and analysis of urban systems to support test scenarios that identify bottlenecks and enhance smart city efficiency. This paper delves into the crucial roles of citizen report analytics, prediction, and digital twin technologies at the neighborhood level. The study integrates extract, transform, load (ETL) processes, artificial intelligence (AI) techniques, and a digital twin methodology to process and interpret urban data streams derived from citizen interactions with the city’s coordinate-based problem mapping platform. Using an interactive GeoDataFrame within the digital twin methodology, dynamic entities facilitate simulations based on various scenarios, allowing users to visualize, analyze, and predict the response of the urban system at the neighborhood level. This approach reveals antecedent and predictive patterns, trends, and correlations at the physical level of each city area, leading to improvements in urban functionality, resilience, and resident quality of life.
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