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Markov CA, Multi Regression, and Multiple Decision Making for Modeling Historical Changes in Kirkuk City, Iraq
- Source :
- Journal of the Indian Society of Remote Sensing. 42:165-178
- Publication Year :
- 2013
- Publisher :
- Springer Science and Business Media LLC, 2013.
-
Abstract
- The cellular automata (CA) model is an important tool in land use change studies. Swift increases in population and long-term expectations of rapid urbanization have led to extensive land use change, and normal living conditions have affected the natural resources of the land. This paper highlights and analyzes the historical urban changes in Kirkuk City, Iraq, considering repeated changes undergone by the state such change as government infrastructures, wars, and economic blockade. In this paper, an integrated model, built-in multi regression model, and multi-criteria evaluation were considered to improve the representation of CA transition rules. Environmental and socioeconomic factors were used to produce Suitable Maps (SMs). These SMs were practicalities to create factor layers and weight usage, rating method process for variance expert decision-making groups, and geographic information systems for the periods 1984, 1990, 2000, and 2010. The roots of the equation (R2) values are compared and these values are chosen to produce a good model of suitable maps. The approach used in this study provides a mechanism for monitoring suitability maps in Kirkuk. Furthermore, the model Markov CA is implemented and evaluated. The results indicate that the model, its related concepts performs sufficiency
- Subjects :
- education.field_of_study
Geographic information system
Markov chain
business.industry
Geography, Planning and Development
Population
Variance (land use)
Regression analysis
Natural resource
Geography
Urbanization
Earth and Planetary Sciences (miscellaneous)
Econometrics
Land use, land-use change and forestry
business
education
Cartography
Subjects
Details
- ISSN :
- 09743006 and 0255660X
- Volume :
- 42
- Database :
- OpenAIRE
- Journal :
- Journal of the Indian Society of Remote Sensing
- Accession number :
- edsair.doi...........439afb82bdf64b7fa6566d33297afb95