Traffic Regulator Detection and Identification from Crowdsourced Data—A Systematic Literature Review

Author:

Zourlidou Stefania,Sester Monika

Abstract

Mapping with surveying equipment is a time-consuming and cost-intensive procedure that makes the frequent map updating unaffordable. In the last few years, much research has focused on eliminating such problems by counting on crowdsourced data, such as GPS traces. An important source of information in maps, especially under the consideration of forthcoming self-driving vehicles, is the traffic regulators. This information is largely lacking in maps like OpenstreetMap (OSM) and this article is motivated by this fact. The topic of this systematic literature review (SLR) is the detection and recognition of traffic regulators such as traffic lights (signals), stop-, yield-, priority-signs, right of way priority rules and turning restrictions at intersections, by leveraging non imagery crowdsourced data. More particularly, the aim of this study is (1) to identify the range of detected and recognised regulatory types by crowdsensing means, (2) to indicate the different classification techniques that can be used for these two tasks, (3) to assess the performance of different methods, as well as (4) to identify important aspects of the applicability of these methods. The two largest databases of peer-reviewed literature were used to locate relevant research studies and after different screening steps eleven articles were selected for review. Two major findings were concluded—(a) most regulator types can be identified with over 80% accuracy, even using heuristic-driven approaches and (b) under the current progress on the field, no study can be reproduced for comparative purposes nor can solely rely on open data sources due to lack of publicly available datasets and ground truth maps. Future research directions are highlighted as possible extensions of the reviewed studies.

Publisher

MDPI AG

Subject

Earth and Planetary Sciences (miscellaneous),Computers in Earth Sciences,Geography, Planning and Development

Cited by 12 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Intersense: An XGBoost model for traffic regulator identification at intersections through crowdsourced GPS data;Transportation Research Part C: Emerging Technologies;2023-06

2. Recognition of Intersection Traffic Regulations from Crowdsourced Data;ISPRS International Journal of Geo-Information;2022-12-23

3. Identification of Road Network Intersection Types from Vehicle Telemetry Data Using a Convolutional Neural Network;ISPRS International Journal of Geo-Information;2022-08-31

4. Traffic Regulation Recognition using Crowd-Sensed GPS and Map Data: a Hybrid Approach;AGILE: GIScience Series;2022-06-10

5. TRAFFIC CONTROL RECOGNITION WITH AN ATTENTION MECHANISM USING SPEED-PROFILE AND SATELLITE IMAGERY DATA;The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences;2022-06-01

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