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CA-Markov zemes lietojuma pārmaiņu modelis×Uz objektu balstīta attēlu analīze (OBIA)×
NozareTelpiskā analīzeTālizpēte
SaimeProcess / pipelineProcess / pipeline
Izcelsmes gads19972010
AutorsCellular automata (Clarke) + Markov chain (Muller & Middleton)Thomas Blaschke
TipsSpatio-temporal land-use change simulationImage segmentation and classification pipeline
PirmavotsClarke, K. C., Hoppen, S., & Gaydos, L. (1997). A self-modifying cellular automaton model of historical urbanization in the San Francisco Bay area. Environment and Planning B, 24(2), 247–261. DOI ↗Blaschke, T. (2010). Object based image analysis for remote sensing. ISPRS Journal of Photogrammetry and Remote Sensing, 65(1), 2–16. DOI ↗
Citi nosaukumiCA-Markov model, cellular automata Markov, land-use change simulation, CA-Markov arazi kullanımı modeliGeographic Object-Based Image Analysis, GEOBIA, Object-Oriented Image Analysis, Nesne Tabanlı Görüntü Analizi
Saistītās33
KopsavilkumsCA-Markov is a hybrid spatio-temporal model that projects land-use and land-cover change by combining a Markov chain — which predicts how much of each class will change — with cellular automata, which decide where that change happens. Widely used for urban-growth and land-cover forecasting, it answers both the quantity and the location of change, something neither component does well alone.Object-Based Image Analysis (OBIA) is a remote sensing image processing paradigm that groups pixels into meaningful image objects before classification, rather than analysing each pixel independently. Formally articulated and consolidated by Thomas Blaschke in his landmark 2010 ISPRS review, OBIA draws on multiresolution segmentation algorithms and combines spectral, spatial, contextual, and textural object attributes to produce semantically rich land-cover maps from high-resolution imagery.
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ScholarGateSalīdzināt metodes: CA-Markov · Object-Based Image Analysis. Izgūts 2026-06-17 no https://scholargate.app/lv/compare