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Automatic identification system-based trajectory clustering framework to identify vessel movement pattern

Oka Widyantara, I MadeNoven Hartawan, I PutuNgurah Eka Karyawati, Anak Agung IstriEr, Ngurah IndraArtana, Ketut Buda
IAES International Journal of Artificial Intelligence (IJ-AI) (Sinta 1)Vol. 0 No. 01 Maret 2023
DOI10.11591/ijai.v12.i1.pp1-11

Abstrak

Automatic identification system (AIS) is a vessel radio navigation equipment that has been determined by international maritime organization (IMO). Historical AIS data can be utilized for anomaly detection, trajectory prediction, and vessel trajectory planning. These benefits can be achieved by identifying the vessel's trajectory pattern through trajectory clustering. However, more effort is needed in trajectory clustering using AIS data due to their large volume and the significant number of deficiencies. In addition, trajectory clustering cannot be directly applied to trajectory data, which also applies to vessel trajectory. Therefore, we propose a trajectory clustering framework by combining douglas peucker (DP), longest common subsequence (LCSS), multi-dimensional scaling (MDS), and density-based spatial clustering of applications with noise (DBSCAN). Our experiments, carried out with AIS data for the Lombok Strait, Indonesia, showed that the trajectory compression with DP significantly accelerates the similarity measurement process. Moreover, we found that the LCSS is the optimal algorithm for similarity measurement of vessel trajectories based on AIS data. We also applied the right combination of MDS and DBSCAN in density-based clustering. The proposed framework can distinguish trajectoriess in different directions, identify the noise, and produce good quality clusters in relatively fast total processing time.

Kata Kunci

Data miningartificial IntelligentAutomatic identification systemData miningDensity-based spatial clustering of applications with noiseLongest common subsequenceTrajectoryVessel

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Automatic identification system-based trajectory clustering framework to identify vessel movement pattern | IAES International Journal of Artificial Intelligence (IJ-AI) | Publiora