Please use this identifier to cite or link to this item: http://repository.ipb.ac.id/handle/123456789/158394
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dc.contributor.advisorAgus, Syamsul Bahri
dc.contributor.advisorArhatin, Risti Endriani
dc.contributor.authorSentosa, Bayu
dc.date.accessioned2024-08-23T10:05:57Z
dc.date.available2024-08-23T10:05:57Z
dc.date.issued2024
dc.identifier.urihttp://repository.ipb.ac.id/handle/123456789/158394
dc.description.abstractTahun 2013 telah berlangsung kegiatan reklamasi teluk jakarta yang berdampak pada salah satu lokasi yaitu Pantai Indah Kapuk, Jakarta Utara. Kegiatan tersebut menyebabkan perlunya pemantauan kondisi hutan mangrove melalui tingkat kerapatannya untuk menjaga stabilitas dan kelestarian hutan mangrove di Pantai Indah Kapuk. Penelitian ini bertujuan untuk menganalisis sebaran dan kerapatan mangrove serta mengetahui tingkat akurasi dengan menggunakan Citra Sentinel-2A di Pantai Indah Kapuk. Tingkat akurasi citra dilakukan dengan membandingkan klasifikasi Maximum Likelihood (MLH) berbasis piksel dan Support Vector Machine (SVM) berbasis objek. Uji akurasi juga dilakukan terhadap algoritma Mangrove Vegetation Index (MVI). Algoritma MVI akan di gabungkan dengan algoritma Normalized Difference Vegetation Index (NDVI) untuk menganalisis tingkat sebaran dan kerapatan mangrove. Hasil luasan sebaran mangrove dengan MLH sebesar 46,88 ha, SVM sebesar 47,43 ha dan algoritma MVI sebesar 49,75 ha. Akurasi keseluruhan yang dihasilkan untuk klasifikasi MLH dan SVM yaitu 73,23% dan 81,89% serta algoritma MVI sebesar 92,13%. Luasan sebaran dan kerapatan mangrove menghasilkan tiga kategori dengan mangrove jarang (0,94 ha), mangrove sedang (0,25 ha) dan didominasi oleh mangrove rapat (48,56 ha). Hasil pengujian hubungan antara data tutupan kanopi mangrove dengan NDVI didapatkan nilai koefisiesn korelasi (r) sebesar 0,8830 dan koefisien determinasi (R^2) sebesar 0,7842.
dc.description.abstractIn 2013, reclamation activities took place in Jakarta Bay, which affected one of the locations, Pantai Indah Kapuk, North Jakarta. This activity causes the need to monitor the condition of mangrove forests through the level of density to maintain the stability and sustainability of mangrove forests in Pantai Indah Kapuk. This study aims to analyze the distribution and density of mangroves and determine the level of accuracy using Sentinel-2A imagery at Pantai Indah Kapuk. Image accuracy tests were conducted by comparing pixel-based Maximum Likelihood (MLH) classification and object-based Support Vector Machine (SVM). Accuracy tests were also conducted on the Mangrove Vegetation Index (MVI) algorithm. The MVI algorithm will be combined with the Normalized Difference Vegetation Index (NDVI) algorithm to analyze the level of mangrove distribution and density. The results of mangrove distribution area with MLH amounted to 46.88 ha, SVM amounted to 47.43 ha and MVI algorithm amounted to 49.75 ha. The overall accuracy produced for MLH and SVM classification is 73.23% and 81.89% and the MVI algorithm is 92.13%. Mangrove distribution and density resulted in three categories with sparse mangroves (0.94 ha), moderate mangroves (0.25 ha) and dominated by dense mangroves (48.56 ha). The results of testing the relationship between mangrove canopy cover data with NDVI obtained a correlation coefficient (r) of 0.8830 and the coefficient of determination (R^2) of 0.7842.
dc.description.sponsorship
dc.language.isoid
dc.publisherIPB Universityid
dc.titleAnalisis Sebaran dan Kerapatan Mangrove dengan menggunakan Citra Sentinel 2A di Pantai Indah Kapuk, Jakarta Utaraid
dc.title.alternativeAnalysis of Mangrove Distribution and Density using Sentinel 2A Imagery in Pantai Indah Kapuk, Jakarta Utara
dc.typeSkripsi
dc.subject.keywordklasifikasiid
dc.subject.keywordmangroveid
dc.subject.keywordMVIid
dc.subject.keywordNDVIid
dc.subject.keywordPantai Indah Kapukid
Appears in Collections:UT - Marine Science And Technology

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