Urban Growth Monitoring and Modeling Using Historical Earth Observation Satellite Data
A special issue of Remote Sensing (ISSN 2072-4292). This special issue belongs to the section "Remote Sensing Image Processing".
Deadline for manuscript submissions: closed (20 January 2024) | Viewed by 13079
Special Issue Editors
Interests: remote sensing; geospatial information; urban observation and monitoring; land cover and land use mapping; sustainable development; machine learning
Interests: atmosphere and high carbon reservoirs; agriculture; urban environment assessment; natural disaster
Special Issues, Collections and Topics in MDPI journals
Special Issue Information
Dear Colleagues,
Urban growth is a major issue in sustainable development, and a lack of control in urban development may fail in the insufficiency of urban infrastructure, disaster risk management, and managing public health. To achieve sustainable urban development, understanding the background history of urban areas is essential to measure the effects of policies, strategies, and investments. Moreover, history is useful to model urban growth for layout strategies and plans through a scenario-based analysis as baselines for the assessment of positive and negative effects of future growths.
Historical earth observation satellite data archives, such as the Landsat series, are useful for tracking urban growth over time, and processing the extensive amount of data has been challenging. However, machine learning techniques and strengthened computing resources have helped in breakthroughs through the automated processing of time-series data with many slices. Additionally, cloud-based computing infrastructures connected to satellite data archives and visualization interfaces, such as the Google Earth Engine, have sped up the application of historical earth observation satellite data. Time-series data sets on urban growth are useful inputs for the application of theories and models for urban growth projections, which could be the basis for urban planners and development agencies for formulating policies and strategies of urban development projects.
The aim of the present Special Issue is to cover the relevant topics, trends, and best practices in urban growth monitoring and modeling using historical earth observation satellite data. Moreover, the Special Issue’s scope covers applications of urban growth monitoring, modeling, and projections to sustainable urban development and introduces new methodologies in the field.
We would like to invite you to contribute to this Special Issue by submitting articles concerning your recent research, experimental work, reviews, and/or case studies related to the field of urban growth monitoring and modeling using historical earth observation satellite data. Contributions may be from, but not limited to, the following topics:
Remote sensing methods using historical earth observation satellite data, such as:
- Time-series land cover and land use mapping;
- Change detection of land cover and land use;
- Modeling and predicting land use and land cover changes;
- Mapping urban extents and human settlements;
- Modeling and predicting urban growths.
Additionally, applications of the above, such as:
- Disaster risk management;
- Urban planning and development;
- Transport infrastructure development;
- Regional development;
- Impact assessment of infrastructure development projects;
- Socioeconomic monitoring and modeling.
Dr. Hiroyuki Miyazaki
Dr. Wataru Takeuchi
Guest Editors
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Keywords
- historical earth observation satellite data
- satellite remote sensing
- land cover and land use
- urban growth
- human settlement
- change detection
- time-series analysis
- machine learning
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