MACHINE LEARNING MODEL FOR REAL-TIME MOTORCYCLE VIOLATION DETECTION

Traffic violations are still a common thing both by car drivers and motorcycle. Traffic violators are usually supervised by traffic police. In Indonesia, traffic supervision is still processed manually by the traffic police. This research tries to develop a machine learning model that can automatica...

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Main Author: Ardyamandala Al Assyifa, Gilang
Format: Final Project
Language:Indonesia
Online Access:https://digilib.itb.ac.id/gdl/view/43655
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Institution: Institut Teknologi Bandung
Language: Indonesia
id id-itb.:43655
spelling id-itb.:436552019-09-27T15:37:39ZMACHINE LEARNING MODEL FOR REAL-TIME MOTORCYCLE VIOLATION DETECTION Ardyamandala Al Assyifa, Gilang Indonesia Final Project object detection, violation, motorcycle, YOLOv3, real-time INSTITUT TEKNOLOGI BANDUNG https://digilib.itb.ac.id/gdl/view/43655 Traffic violations are still a common thing both by car drivers and motorcycle. Traffic violators are usually supervised by traffic police. In Indonesia, traffic supervision is still processed manually by the traffic police. This research tries to develop a machine learning model that can automatically detect violations by motorcyclist in real-time performance. The approach used in this study is to adopt object detection algorithm YOLOv3 (You Only Look Once) to detect related objects in the case of violation detection, these objects are the helmet, people, and motorcycle. The dataset used in this study is a traffic video dataset collected through recording with a CCTV camera at 3 meters height. The violation object detection approach from this study obtained a mAP (mean average precision) score of 0,935 (helmet), 0,923 (person), and 0,970 (motorcycle). The model run at speeds of 51,24 frames per second (real-time) on NVIDIA GTX 1080 Ti device. The object detection model then adapted for the purpose of violations detection, the model obtained an accuracy of 90.1 % for detecting riders without a helmet and 33,3 % for detecting excess passengers violation (more than 2 persons in one motorcycle). This study is expected to be a catalyst for auto surveillance/violation detection system in Indonesia. text
institution Institut Teknologi Bandung
building Institut Teknologi Bandung Library
continent Asia
country Indonesia
Indonesia
content_provider Institut Teknologi Bandung
collection Digital ITB
language Indonesia
description Traffic violations are still a common thing both by car drivers and motorcycle. Traffic violators are usually supervised by traffic police. In Indonesia, traffic supervision is still processed manually by the traffic police. This research tries to develop a machine learning model that can automatically detect violations by motorcyclist in real-time performance. The approach used in this study is to adopt object detection algorithm YOLOv3 (You Only Look Once) to detect related objects in the case of violation detection, these objects are the helmet, people, and motorcycle. The dataset used in this study is a traffic video dataset collected through recording with a CCTV camera at 3 meters height. The violation object detection approach from this study obtained a mAP (mean average precision) score of 0,935 (helmet), 0,923 (person), and 0,970 (motorcycle). The model run at speeds of 51,24 frames per second (real-time) on NVIDIA GTX 1080 Ti device. The object detection model then adapted for the purpose of violations detection, the model obtained an accuracy of 90.1 % for detecting riders without a helmet and 33,3 % for detecting excess passengers violation (more than 2 persons in one motorcycle). This study is expected to be a catalyst for auto surveillance/violation detection system in Indonesia.
format Final Project
author Ardyamandala Al Assyifa, Gilang
spellingShingle Ardyamandala Al Assyifa, Gilang
MACHINE LEARNING MODEL FOR REAL-TIME MOTORCYCLE VIOLATION DETECTION
author_facet Ardyamandala Al Assyifa, Gilang
author_sort Ardyamandala Al Assyifa, Gilang
title MACHINE LEARNING MODEL FOR REAL-TIME MOTORCYCLE VIOLATION DETECTION
title_short MACHINE LEARNING MODEL FOR REAL-TIME MOTORCYCLE VIOLATION DETECTION
title_full MACHINE LEARNING MODEL FOR REAL-TIME MOTORCYCLE VIOLATION DETECTION
title_fullStr MACHINE LEARNING MODEL FOR REAL-TIME MOTORCYCLE VIOLATION DETECTION
title_full_unstemmed MACHINE LEARNING MODEL FOR REAL-TIME MOTORCYCLE VIOLATION DETECTION
title_sort machine learning model for real-time motorcycle violation detection
url https://digilib.itb.ac.id/gdl/view/43655
_version_ 1822270452151615488