Novita Siti Julaeha
STMIK Bandung

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Deteksi Kepadatan Kendaraan Roda Empat di Jalan Raya Berbasis Wilayah Menggunakan Euclidean Distance Neng Sri Lathifah Zulfa; Novita Siti Julaeha; Mina Ismu Rahayu; Yus Jayusman
Jurnal Penelitian dan Pengembangan Teknologi Informasi dan Komunikasi Vol 14 No 1 (2025): Jurnal Penelitian dan Pengembangan Teknologi Informasi dan Komunikasi
Publisher : LPPM STMIK Bandung

Show Abstract | Download Original | Original Source | Check in Google Scholar | DOI: 10.58761/jurtikstmikbandung.v14.i1.182

Abstract

Traffic congestion in urban areas such as Bandung has become a critical issue that demands intelligent and efficient solutions. This study proposes an image-based vehicle density detection system for four-wheeled vehicles using a region-based approach combined with the Euclidean Distance algorithm. Traffic images are analyzed to calculate inter-vehicle distances based on centroid points, and the results are used to classify traffic conditions into three categories: free-flowing, moderate, and congested. The system is developed using the Python programming language and the Streamlit web interface. Functional testing is conducted using the Black Box Testing method. Experimental results demonstrate that the system can automatically and reliably detect and classify traffic density in real time, offering a practical solution to support urban traffic management.