Evaluation of Intelligent Transport Systems Used in Urban Agglomerations and Intercity Roads by Professional Truck Drivers
Abstract
:1. Introduction
- increase efficiency of infrastructure and rolling stock,
- increase safety of road users,
- increase economic efficiency and competitiveness,
- lower negative impact on environment,
- develop multimodal solutions,
- improve cooperation between companies engaged in transport process, and
- improves integration and globalization of transport.
2. Literature Overview
3. Methodology
- Which tools of intelligent transport systems improve drivers’ work the most?
- What are the benefits of intelligent transport systems, according do truck drivers?
- Should intelligent transport systems be further developed and why?
- GPS and support of route choice,
- variable content signs (in the form of displays informing about conditions on road or warning about dangers, traffic congestion, detours, weather conditions),
- displays informing about occupation of parking lots,
- automatic identification systems for vehicles (such as recognition of license plates),
- electronic toll collection systems,
- safety cameras,
- accommodative traffic lights,
- displays showing vehicle’s current speed,
- speed cameras,
- segmental speed measurement,
- road illumination (e.g., additional illumination of zebra crossings),
- dynamic monitoring of vehicle parameters,
- dynamic fleet and route management, and
- variable number of lanes, depending on traffic.
4. Research Results
4.1. Introduction
- safety improvement (reduction of accidents by 40–80%),
- reduction of travel time by 45–70%, and
- improvement of comfort and conditions of movement for all users.
- increase of street capacity by 20–25%,
- reduction of fleet management cost,
- reduction of road maintenance cost, and
- increase of economic benefits for the whole region.
4.2. Research Analysis
- GPS and support of route choice,
- variable content signs (in the form of displays informing about conditions on road or warning about dangers, traffic congestion, detours, weather conditions),
- displays informing about occupation of parking lots,
- automatic identification systems for vehicles (such as recognition of license plates),
- electronic toll collection systems,
- safety cameras,
- accommodative traffic lights,
- displays showing vehicle’s current speed,
- speed cameras,
- segmental speed measurement,
- road illumination (e.g., additional illumination of zebra crossings),
- dynamic monitoring of vehicle parameters,
- dynamic fleet and route management, and
- variable number of lanes, depending on traffic.
- 0 (has no impact)—automatic identification systems for vehicles (40%);
- 1 (has minimal impact)—displays showing vehicle’s current speed and segmental speed measurement (20%);
- 2 (has impact)—variable content signs (35%);
- 3 (has notable impact)—variable number of lanes depending on traffic (16%);
- 4 (has huge impact)—variable content signs (38%);
- 0 (has no impact)—variable content signs and extra road illumination (3%);
- 1 (has minimal impact)—extra road illumination (8%);
- 2 (has impact)—dynamic fleet and route management (18%);
- 3 (has notable impact)—automatic identification systems for vehicles and dynamic monitoring of vehicle parameters (8%); and
- 4 (has huge impact)—automatic identification systems for vehicles (7%);
5. Conclusions
- exploration in the field of ITS and their utility for professional drivers,
- raising awareness about ITS among all groups of road users, public authorities and logistic operators, and
- developing recommendations for entities responsible for implementation of specific tools city authorities and road operators.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Area of Application | Performed Services |
---|---|
Traffic and journey management | Information supporting route planning Information about destination Personal data services Navigation and supporting of route choice Optimizing traffic flow Collecting data about control |
Truck handling | Organizing movement of goods Electronic truck briefing Automatic road safety control Onboard monitoring of vehicle safety Administrative support of trucks Inspections of dangerous goods carriage Managing truck fleet Multimodal centres and warehouse services |
Electronic toll collection systems | Electronic ticket distribution and transport agreements Verification and confirmation of entrance fees Managing agreements and shipping documents Detection of frauds |
Public transport management | Organization and planning of public transport Monitoring of public transport |
Road safety management | Information about road conditions Warning about danger Driving support Accident prevention Video anti-collision systems Collision prevention systems Visibility improvement Providing information about limitations of traffic caused by accident Automatic control of level crossings Safety of public transport |
Safety services management | Emergency Registration of accidents Automatic safety services alarming Safety cars management |
Road infrastructure management and maintenance | Infrastructure maintenance management Key junctions’ management Special vehicles’ management Providing data about pollution |
Shared data management | Managing repositories Historical data management |
User | Public Transport Passengers | Passenger Vehicle Drivers | Truck Drivers |
---|---|---|---|
Tools | Pre-trip information | Vision enhancement | Commercial vehicle administrative process |
On-trip public transport information | Automated vehicle operation | Automated roadside safety inspection | |
Personal information services Route Guidance and Navigation Public travel safety | Longitudinal collision avoidance Lateral collision avoidance Safety readiness Pre-crash restrain deployment | Commercial vehicle on-board safety monitoring | |
Emergency notification and personal security | |||
Safety enhancement for vulnerable road users Incident management Policing/enforcing traffic regulations |
0 (Has No Impact) | 1 (Has Minimal Impact) | 2 (Has Impact) | 3 (Has Notable Impact) | 4 (Has Huge Impact) | I Have No Opinion | |
---|---|---|---|---|---|---|
GPS and support of route choice | 11% | 17% | 29% | 14% | 25% | 4% |
Variable content signs | 3% | 11% | 35% | 12% | 38% | 1% |
Displays informing about occupation of parking lots | 21% | 15% | 29% | 15% | 19% | 1% |
Automatic identification systems for vehicle | 40% | 16% | 20% | 8% | 7% | 9% |
Electronic toll collection | 29% | 15% | 23% | 10% | 17% | 6% |
Safety cameras | 11% | 19% | 30% | 13% | 21% | 6% |
Accommodative traffic lights | 5% | 13% | 29% | 11% | 34% | 8% |
Displays showing vehicle’s current speed | 12% | 20% | 30% | 14% | 17% | 7% |
Segmental speed measurement | 11% | 20% | 31% | 13% | 20% | 5% |
Speed cameras | 15% | 18% | 32% | 13% | 16% | 6% |
Extra road illumination | 3% | 8% | 31% | 12% | 34% | 12% |
Dynamic monitoring of vehicle parameters | 24% | 16% | 26% | 8% | 9% | 17% |
Variable number of lanes depending on traffic | 6% | 13% | 30% | 16% | 23% | 12% |
Dynamic fleet and route management | 26% | 15% | 18% | 12% | 8% | 21% |
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Drop, N.; Garlińska, D. Evaluation of Intelligent Transport Systems Used in Urban Agglomerations and Intercity Roads by Professional Truck Drivers. Sustainability 2021, 13, 2935. https://doi.org/10.3390/su13052935
Drop N, Garlińska D. Evaluation of Intelligent Transport Systems Used in Urban Agglomerations and Intercity Roads by Professional Truck Drivers. Sustainability. 2021; 13(5):2935. https://doi.org/10.3390/su13052935
Chicago/Turabian StyleDrop, Natalia, and Daria Garlińska. 2021. "Evaluation of Intelligent Transport Systems Used in Urban Agglomerations and Intercity Roads by Professional Truck Drivers" Sustainability 13, no. 5: 2935. https://doi.org/10.3390/su13052935
APA StyleDrop, N., & Garlińska, D. (2021). Evaluation of Intelligent Transport Systems Used in Urban Agglomerations and Intercity Roads by Professional Truck Drivers. Sustainability, 13(5), 2935. https://doi.org/10.3390/su13052935