2020
DOI: 10.1088/1755-1315/528/1/012041
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Incremental Spatio Temporal Clustering Application on Hotspot Data

Abstract: Hotspot is one of indications for forest and land fires. Analysis of hotspot data needs to be done as an early warning activity to prevent the occurrence of forest and land fires. The previous study analyzed hotspot clusters using the incremental spatio-temporal density-based clustering (ST-DBSCAN) algorithm. Hotspots in a cluster are considered as strong indicator for forest and land fires. However, clustering of hotspots is implemented on the command line interface. Through this interface, users are required… Show more

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Cited by 3 publications
(2 citation statements)
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“…Kinerja SOLAP untuk titik panas selanjutnya ditingkatkan dalam penelitian [9]. Aplikasi web yang menyajikan hasil penerapan teknik data mining pada data titik panas telah dibangun dengan mendekatan deteksi outlier [10], klasifikasi [11], spatial clustering [12] [13], Incremental Spatio Temporal Clustering [14] [15], sequential pattern mining [16]. Aplikasi lainnya adalah sistem berbasis web untuk menghitung perubahan tutupan lahan pada area kebakaran hutan dan lahan [17], dan pemantauan titik panas dan early warning system [18] .…”
Section: Pendahuluanunclassified
“…Kinerja SOLAP untuk titik panas selanjutnya ditingkatkan dalam penelitian [9]. Aplikasi web yang menyajikan hasil penerapan teknik data mining pada data titik panas telah dibangun dengan mendekatan deteksi outlier [10], klasifikasi [11], spatial clustering [12] [13], Incremental Spatio Temporal Clustering [14] [15], sequential pattern mining [16]. Aplikasi lainnya adalah sistem berbasis web untuk menghitung perubahan tutupan lahan pada area kebakaran hutan dan lahan [17], dan pemantauan titik panas dan early warning system [18] .…”
Section: Pendahuluanunclassified
“…The data consist of hotspot data which are represented in a two-dimensional model, namely time and location. Other applications for descriptive and predictive analytics on hotspots were also developed using data mining techniques [14], [15], [16], [17].…”
Section: Introductionmentioning
confidence: 99%