DocumentCode :
3719024
Title :
Reducing emergency services response time in smart cities: An advanced adaptive and fuzzy approach
Author :
Soufiene Djahel;Nicolas Smith;Shen Wang;John Murphy
Author_Institution :
UCD School of Computer Science and Informatics, Ireland
fYear :
2015
Firstpage :
1
Lastpage :
8
Abstract :
Nowadays, the unprecedented increase in road traffic congestion has led to severe consequences on individuals, economy and environment, especially in urban areas in most of big cities worldwide. The most critical among the above consequences is the delay of emergency vehicles, such as ambulances and police cars, leading to increased deaths on roads and substantial financial losses. To alleviate the impact of this problem, we design an advanced adaptive traffic control system that enables faster emergency services response in smart cities while maintaining a minimal increase in congestion level around the route of the emergency vehicle. This can be achieved with a Traffic Management System (TMS) capable of implementing changes to the road network´s control and driving policies following an appropriate and well-tuned adaptation strategy. This latter is determined based on the severity of the emergency situation and current traffic conditions estimated using a fuzzy logic-based scheme. The obtained simulation results, using a set of typical road networks, have demonstrated the effectiveness of our approach in terms of the significant reduction of emergency vehicles´ response time and the negligible disruption caused to the non-emergency vehicles travelling on the same road network.
Keywords :
"Vehicles","Roads","Smart cities","Emergency services","Fuzzy logic","Time factors","Cities and towns"
Publisher :
ieee
Conference_Titel :
Smart Cities Conference (ISC2), 2015 IEEE First International
Type :
conf
DOI :
10.1109/ISC2.2015.7366151
Filename :
7366151
Link To Document :
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