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Pregled bibliografske jedinice broj: 1072726

An Overview of Reinforcement Learning Methods for Variable Speed Limit Control


Kušić, Krešimir; Ivanjko, Edouard; Gregurić, Martin; Miletić, Mladen
An Overview of Reinforcement Learning Methods for Variable Speed Limit Control // Applied Sciences, 10 (2020), 14; 4917, 14 doi:10.3390/app10144917 (međunarodna recenzija, članak, znanstveni)


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Naslov
An Overview of Reinforcement Learning Methods for Variable Speed Limit Control

Autori
Kušić, Krešimir ; Ivanjko, Edouard ; Gregurić, Martin ; Miletić, Mladen

Izvornik
Applied Sciences (2076-3417) 10 (2020), 14; 4917, 14

Vrsta, podvrsta i kategorija rada
Radovi u časopisima, članak, znanstveni

Ključne riječi
intelligent transportation systems ; urban motorways ; variable speed limit ; reinforcement learning ; deep learning, multi-agent systems

Sažetak
Variable Speed Limit (VSL) control systems are widely studied as solutions for improving safety and throughput on urban motorways. Machine learning techniques, specifically Reinforcement Learning (RL) methods, are a promising alternative for setting up VSL since they can learn and react to different traffic situations without knowing the explicit model of the motorway dynamics. However, the efficiency of combined RL-VSL is highly related to the class of the used RL algorithm, and description of the managed motorway section in which the RL-VSL agent sets the appropriate speed limits. Currently, there is no existing overview of RL algorithm applications in the domain of VSL. Therefore, a comprehensive survey on the state of the art of RL-VSL is presented. Best practices are summarized, and new viewpoints and future research directions, including an overview of current open research questions are presented.

Izvorni jezik
Engleski

Znanstvena područja
Elektrotehnika, Računarstvo, Tehnologija prometa i transport



POVEZANOST RADA


Projekti:
KK.01.1.1.01.0009 - Napredne metode i tehnologije u znanosti o podatcima i kooperativnim sustavima (EK )

Ustanove:
Fakultet prometnih znanosti, Zagreb

Poveznice na cjeloviti tekst rada:

doi www.mdpi.com

Citiraj ovu publikaciju:

Kušić, Krešimir; Ivanjko, Edouard; Gregurić, Martin; Miletić, Mladen
An Overview of Reinforcement Learning Methods for Variable Speed Limit Control // Applied Sciences, 10 (2020), 14; 4917, 14 doi:10.3390/app10144917 (međunarodna recenzija, članak, znanstveni)
Kušić, K., Ivanjko, E., Gregurić, M. & Miletić, M. (2020) An Overview of Reinforcement Learning Methods for Variable Speed Limit Control. Applied Sciences, 10 (14), 4917, 14 doi:10.3390/app10144917.
@article{article, author = {Ku\v{s}i\'{c}, Kre\v{s}imir and Ivanjko, Edouard and Greguri\'{c}, Martin and Mileti\'{c}, Mladen}, year = {2020}, pages = {14}, DOI = {10.3390/app10144917}, chapter = {4917}, keywords = {intelligent transportation systems, urban motorways, variable speed limit, reinforcement learning, deep learning, multi-agent systems}, journal = {Applied Sciences}, doi = {10.3390/app10144917}, volume = {10}, number = {14}, issn = {2076-3417}, title = {An Overview of Reinforcement Learning Methods for Variable Speed Limit Control}, keyword = {intelligent transportation systems, urban motorways, variable speed limit, reinforcement learning, deep learning, multi-agent systems}, chapternumber = {4917} }
@article{article, author = {Ku\v{s}i\'{c}, Kre\v{s}imir and Ivanjko, Edouard and Greguri\'{c}, Martin and Mileti\'{c}, Mladen}, year = {2020}, pages = {14}, DOI = {10.3390/app10144917}, chapter = {4917}, keywords = {intelligent transportation systems, urban motorways, variable speed limit, reinforcement learning, deep learning, multi-agent systems}, journal = {Applied Sciences}, doi = {10.3390/app10144917}, volume = {10}, number = {14}, issn = {2076-3417}, title = {An Overview of Reinforcement Learning Methods for Variable Speed Limit Control}, keyword = {intelligent transportation systems, urban motorways, variable speed limit, reinforcement learning, deep learning, multi-agent systems}, chapternumber = {4917} }

Časopis indeksira:


  • Current Contents Connect (CCC)
  • Web of Science Core Collection (WoSCC)
    • Science Citation Index Expanded (SCI-EXP)
    • Social Science Citation Index (SSCI)
    • SCI-EXP, SSCI i/ili A&HCI
  • Scopus


Citati:





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