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Spatially constrained clustering over GIS generated suitability maps

Partsinevelos Panagiotis, Papadakis Kostas

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URIhttp://purl.tuc.gr/dl/dias/E1D41706-8BB6-47C9-9395-68C788203933-
Αναγνωριστικόhttps://doi.org/10.1117/12.2194432-
Γλώσσαen-
ΤίτλοςSpatially constrained clustering over GIS generated suitability mapsen
ΔημιουργόςPartsinevelos Panagiotisen
ΔημιουργόςΠαρτσινεβελος Παναγιωτηςel
ΔημιουργόςPapadakis Kostas en
ΕκδότηςSociety of Photo-optical Instrumentation Engineersen
ΠερίληψηAn abundance of GIS and Remote Sensing based spatial analysis studies result in various types of suitability maps, where selected regions are classified according to application driven qualitative or quantitative rules. Often, upon the resulting classified regions which define spatially constrained classes, users intent to position facilities in order to satisfy a series of demand sites spread throughout the study area. This fine tuning procedure, not tackled under classic clustering and location analysis algorithms, is addressed through the extension of k-means algorithm, by restricting cluster centers inside a priori outlined regions, while minimizing distance metrics towards demand locations. Experimentation in both synthetic and real based datasets shows the applicability of the approach and demonstrates the overall performance of the algorithm.en
ΤύποςΠλήρης Δημοσίευση σε Συνέδριοel
ΤύποςConference Full Paperen
Άδεια Χρήσηςhttp://creativecommons.org/licenses/by/4.0/en
Ημερομηνία2015-11-13-
Ημερομηνία Δημοσίευσης2015-
Βιβλιογραφική ΑναφοράP. Partsinevelos, K. Papadakis, "Spatially constrained clustering over GIS generated suitability maps," in Third International Conference on Remote Sensing and Geoinformation of the Environment, 2015. doi: 10.1117/12.2194432en

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