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Klasifikasi Penginderaan Jauh Ruang-Waktu×Analisis Titik Panas (Getis-Ord Gi*)×
BidangAnalisis SpasialAnalisis Spasial
KeluargaRegression modelRegression model
Tahun asal1980s-2000s1992
PencetusWoodcock, Zhu, and remote sensing communityArthur Getis and J. Keith Ord
TipeMulti-temporal image classificationLocal spatial statistic
Sumber perintisZhu, Z. (2017). Change detection using landsat time series: A review of frequencies, preprocessing, algorithms, and applications. ISPRS Journal of Photogrammetry and Remote Sensing, 130, 370-384. DOI ↗Getis, A., & Ord, J. K. (1992). The analysis of spatial association by use of distance statistics. Geographical Analysis, 24(3), 189-206. DOI ↗
Aliasmulti-temporal remote sensing classification, spatio-temporal image classification, temporal remote sensing analysis, STRSCGetis-Ord Gi* statistic, spatial hot spot detection, cluster and outlier analysis, HSA
Terkait45
RingkasanSpace-Time Remote Sensing Classification extends standard image classification to multi-temporal satellite or aerial imagery, enabling analysts to track land cover change, phenological cycles, and environmental dynamics across both space and time. By incorporating the temporal dimension, classifiers achieve higher accuracy and can detect transitions that a single-date analysis would miss.Hot Spot Analysis uses the Getis-Ord Gi* local spatial statistic to identify geographic locations where high or low attribute values cluster together to a degree that is statistically significant. Each feature is evaluated in relation to its neighbours, producing a z-score that flags genuine spatial hot spots and cold spots against a background of random variation.
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ScholarGateBandingkan metode: Space-Time Remote Sensing Classification · Hot Spot Analysis. Diakses 2026-06-17 dari https://scholargate.app/id/compare