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Metriche del Modello Paesaggistico×Classificazione basata sui pixel×
CampoAnalisi spazialeTelerilevamento
FamigliaProcess / pipelineMachine learning
Anno di origine19882007
IdeatoreR. V. O'Neill et al.; McGarigal & Marks (FRAGSTATS)Remote-sensing classification literature
TipoQuantitative landscape pattern descriptionSupervised/unsupervised spectral image classification
Fonte seminaleO'Neill, R. V., et al. (1988). Indices of landscape pattern. Landscape Ecology, 1(3), 153–162. DOI ↗Lu, D., & Weng, Q. (2007). A survey of image classification methods and techniques for improving classification performance. International Journal of Remote Sensing, 28(5), 823–870. DOI ↗
Aliaslandscape pattern indices, FRAGSTATS metrics, fragmentation indices, peyzaj metrikleriPer-Pixel Classification, Spectral Classification, Pixel-by-Pixel Classification, Piksel Tabanlı Sınıflandırma
Correlati32
SintesiLandscape metrics are quantitative indices that describe the composition and spatial configuration of a categorical map — typically land cover — at the patch, class, and whole-landscape levels. Developed in landscape ecology (O'Neill and colleagues, 1988) and made widely usable by the FRAGSTATS software, they turn maps into numbers like patch density, edge density, fragmentation, diversity, and connectivity for ecological, planning, and change analysis.Pixel-based image classification is a fundamental remote-sensing technique that assigns each individual pixel in a satellite or aerial image to a thematic land-cover category based solely on its spectral values across multiple bands. Systematically surveyed and formalized by Lu and Weng (2007), the approach encompasses both supervised methods—where labeled training samples guide the classifier—and unsupervised clustering approaches that discover natural spectral groupings without prior labels.
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ScholarGateConfronta i metodi: Landscape Metrics · Pixel-Based Classification. Consultato il 2026-06-17 da https://scholargate.app/it/compare