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Spatial and Temporal Human Settlement Growth Differentiation with Symbolic Machine Learning for Verifying Spatial Policy Targets: Assiut Governorate, Egypt as a Case Study
- Source :
- Remote Sensing, Vol 12, Iss 3799, p 3799 (2020), Remote Sensing, Volume 12, Issue 22, Pages: 3799, Remote sensing, 12(22):3799, 1-23. MDPI
- Publication Year :
- 2020
- Publisher :
- MDPI AG, 2020.
-
Abstract
- Since 2005, Egypt has a new land-use development policy to control unplanned human settlement growth and prevent outlying growth. This study assesses the impact of this policy shift on settlement growth in Assiut Governorate, Egypt, between 1999 and 2020. With symbolic machine learning, we extract built-up areas from Landsat images of 2005, 2010, 2015, and 2020 and a Landscape Expansion Index with a new QGIS plugin tool (Growth Classifier) developed to classify settlement growth types. The base year, 1999, was produced by the national remote sensing agency. After extracting the built-up areas from the Landsat images, eight settlement growth types (infill, expansion, edge-ribbon, linear branch, isolated cluster, proximate cluster, isolated scattered, and proximate scattered) were identified for four periods (1999:2005, 2005:2010, 2010:2015, and 2015:2020). The results show that prior to the policy shift of 2005, the growth rate for 1999–2005 was 11% p.a. In all subsequent periods, the growth rate exceeded the target rate of 1% p.a., though by varying amounts. The observed settlement growth rates were 5% (2005:2010), 7.4% (2010:2015), and 5.3% (2015:2020). Although the settlements in Assiut grew primarily through expansion and infill, with the latter growing in importance during the last two later periods, outlying growth is also evident. Using four class metrics (number of patches, patch density, mean patch area, and largest patch index) for the eight growth types, all types showed a fluctuated trend between all periods, except for expansion, which always tends to increase. To date, the policy to control human settlement expansion and outlying growth has been unsuccessful.
- Subjects :
- Index (economics)
Geographic information system
symbolic machine learning
010504 meteorology & atmospheric sciences
human settlement growth
0211 other engineering and technologies
02 engineering and technology
Disease cluster
Machine learning
computer.software_genre
01 natural sciences
Development policy
Human settlement
Growth Classifier
Infill
spatiotemporal analysis
Growth rate
Landscape Expansion Index
lcsh:Science
0105 earth and related environmental sciences
geographic information systems
business.industry
Settlement (structural)
MASADA 1.3
021107 urban & regional planning
Nile Valley
land-use policy
Geography
ITC-ISI-JOURNAL-ARTICLE
General Earth and Planetary Sciences
Egypt
lcsh:Q
Artificial intelligence
business
ITC-GOLD
computer
Subjects
Details
- Language :
- English
- ISSN :
- 20724292
- Volume :
- 12
- Issue :
- 3799
- Database :
- OpenAIRE
- Journal :
- Remote Sensing
- Accession number :
- edsair.doi.dedup.....dd1c70d0b7425e4985ae78685ca17865