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    <journal-meta />
    <article-meta>
      <title-group>
        <article-title>C-ITS enabled dynamic traffic management as a service</article-title>
      </title-group>
      <contrib-group>
        <contrib contrib-type="author">
          <string-name>Areti Kotsi</string-name>
          <email>akotsi@certh.gr</email>
          <xref ref-type="aff" rid="aff0">0</xref>
        </contrib>
        <contrib contrib-type="author">
          <string-name>Evangelos Mitsakis</string-name>
          <xref ref-type="aff" rid="aff0">0</xref>
        </contrib>
        <contrib contrib-type="author">
          <string-name>Charilaou-Thermi Rd</string-name>
        </contrib>
        <contrib contrib-type="author">
          <string-name>Thessaloniki</string-name>
        </contrib>
        <contrib contrib-type="author">
          <string-name>Greece</string-name>
        </contrib>
        <aff id="aff0">
          <label>0</label>
          <institution>Centre for Research and Technology Hellas (CERTH) - Hellenic Institute of Transport (HIT)</institution>
          ,
          <addr-line>6</addr-line>
        </aff>
      </contrib-group>
      <fpage>184</fpage>
      <lpage>189</lpage>
      <abstract>
        <p>C-ITS enabled Dynamic Traffic Management as a Service refers to the coordinated provision of several C-ITS services as one combined suite of services and their integration into operational traffic management. Cooperative Intelligent Transport Systems (C-ITS) constitute innovative technologies, which enable information exchange among vehicles (Vehicle-toVehicle, V2V) and between vehicles and the roadside infrastructure (Vehicle-toInfrastructure, V2I). The objective of C-ITS enabled Dynamic Traffic Management as a Service is to extend the exploitation of C-ITS services, by developing a framework for their use in daily operational dynamic traffic management procedures, within varying geographical areas. In this work, two different dimensions of the proposed concept are recognized, which cover the drivers and the traffic managers. The structure of this paper is as follows: first an introduction is provided, secondly the methodology is presented, and finally a case study demonstrating the application of the C-ITS enabled Dynamic Traffic Management as a Service into the real-world urban road network of Thessaloniki is presented, accompanied by the description of the related software tool. Cooperative - Connected - Automated Mobility, Traffic Managemet as a Service CEUR Workshop Proceedings (CEUR-WS.org)</p>
      </abstract>
    </article-meta>
  </front>
  <body>
    <sec id="sec-1">
      <title>1. Introduction</title>
      <p>Road transport systems are facing multiple
long-time challenges such as increased traffic
congestion, reduced efficiency and reduced
road safety, which are typically addressed
through
traffic
management.</p>
      <p>Traffic
management is defined as the organisation,
arrangement, guidance and control of both
stationary
and
moving
traffic,
including
pedestrians, bicyclists and all types of vehicles,
with the objective to provide safe, orderly, and
efficient movement of travelers and enhance
the quality of road networks (Underwood, R. T.
(1990). Traffic management: an introduction.).</p>
      <p>Nowadays, there is an increasing need for
traffic
management
centres
to
adapt
to
disruptive trends and technologies that take
place in the transport and mobility sector.
Models and Methods for Researching Information Systems in</p>
      <p>2020 Copyright for this paper by its authors. Use permitted under Creative
Commons License Attribution 4.0 International (CC BY 4.0).
Private sector business-to-consumer vendors
such as service providers, data aggregators and
networks
operators
are
currently
offering
mobility services to assist travelers in their
daily trips. Hence, they increasingly influence
through these services the travelers’ behavior
and the traffic patterns in road networks.</p>
      <p>
        Traffic Management as a Service aims to
prevent a digital divide which may result from
the lack of integration of such services with
conventional traffic management, resulting to
public authorities gradually reduced level of
control over traffic and traffic management in
their areas of jurisdiction. Data from road
operators, public transport fleet operators,
traffic lights, mobility services, social media
and various apps are to some degree already
incorporated
into
traffic
management [
        <xref ref-type="bibr" rid="ref1">1</xref>
        ].
      </p>
      <p>
        However, the exploitation of data derived from
cooperative, connected, and automated
mobility is not applied in large-scale in traffic
management centers and if so it may be
accompanied by complex processes and
software. From an operations point of view, it
is expected that traffic managers will retain
their role in managing and controlling traffic by
relying on the alliances formed with other
parties, reshaping in this way conventional
traffic management [
        <xref ref-type="bibr" rid="ref2">2</xref>
        ], [
        <xref ref-type="bibr" rid="ref3">3</xref>
        ], [
        <xref ref-type="bibr" rid="ref4">4</xref>
        ].
      </p>
      <p>The work presented herein proposes an
approach for coordinated dynamic traffic
management by integrating C-ITS services and
by promoting collaborative synergies between
Traffic Management Centers and third parties.
C-ITS enabled Dynamic Traffic Management
as a Service is the coordinated provision of
multiple C-ITS services as one combined
service. The concept is developed, in order to
serve both the objectives of drivers as well as
network operators and traffic managers.
Anticipated benefits include network
optimization, effectiveness and interoperability
in dynamic traffic management, and improved
regulation of the provided services. The next
section describes the methodology in which the
C-ITS enabled Dynamic Traffic Management
as a Service is based one, while the third chapter
demonstrates the application of the concept in a
real-life road network, and the final chapter
describes a software tool which is developed for
the application of the concept by traffic
management centers.</p>
    </sec>
    <sec id="sec-2">
      <title>2. Methodology</title>
      <p>
        The concept of the C-ITS enabled Dynamic
Traffic Management as a Service relies on the
approach of [
        <xref ref-type="bibr" rid="ref2">2</xref>
        ] for the design of Dynamic
Traffic Management (DTM) “control
strategies”. A control strategy is defined as a
procedure which typically focuses on the
prevention of congestion on road segments and
on the security of policy goals by optimizing
traffic flows [
        <xref ref-type="bibr" rid="ref2">2</xref>
        ].
      </p>
      <p>Regarding the actual content of a control
strategy, this is comprised on three building
blocks:
1. Policy.
2. Road network.
3. Strategies.</p>
      <p>A policy, which is defined by a road
authority, serves as the basis for a traffic
management control strategy. A policy includes
the description of the importance and the
function roads, as well as quantitative
thresholds for parts of the road network.</p>
      <p>The road network includes all the areas and
where traffic management is applied. The
purpose is to classify the road network into the
following parts:
• Choice nodes, where the traveler can
choose between travel alternatives. Such
nodes can be used to affect traffic flow.
• Control nodes, where the capacity of
one or more directions can be affected. Such
nodes can be used to influence traffic flow.
• Regular nodes, where traffic cannot be
affected and travelers do not have a choice
between travel alternatives.
• Control segment, where the capacity
can be affected. Such sections can be used to
influence traffic flow.
• Links, defined as the parts between two
control nodes or between a control node and
a choice node. Links are used to detect
traffic problems.
• Route parts, defined as the parts
between two choice nodes. Route parts are
used to detect traffic problems.</p>
      <p>The strategies may fall into the following
four categories:
1. Strategy 1 (S1): Inform traffic.
2. Strategy 2 (S2): Enlarge the outflow.
3. Strategy 3 (S3): Reduce the inflow.
4. Strategy 4 (S4): Reroute traffic.</p>
      <p>Each strategy contains one or more DTM
services and they are typically applied as
escalation phases, the first being the least severe
one and the last being the most radical one.</p>
      <p>
        The DTM services considered by [
        <xref ref-type="bibr" rid="ref2">2</xref>
        ]
appropriate to be implement in the road
network and contribute in the successful
implementation of the strategies. Conventional
DTM services include metering, which
contributes to reduce the inflow, and traffic
traffic lights modification, which contributes to
enlarge the outflow and/or reduce the inflow.
2.1. C-ITS
management
      </p>
      <p>services for traffic</p>
      <p>According to [5], C-ITS services are
categorized into Day 1 and Day 1.5 services.</p>
      <p>Day 1 C-ITS services include services with
the objcective to provide Hazardous Location
Notifications, i.e., Slow or stationary vehicle(s)
&amp; traffic ahead warning, Road Works Warning,
Weather Conditions, Emergency Brake Light,
Emergency Vehicle Approaching, and with
services acting as signage applications, i.e.
InVehicle Signage, In-vehicle Speed Limits,
Signal Violation/ Intersection Safety, Traffic
Signal Priority Request by designated vehicles,
Green Light Optimal Speed Advisory, Probe
Vehicle Data, and Shockwave damping.</p>
      <p>Day 1.5 C-ITS services include more
sophisticated services, many of them being
until today in an experimental phase. These
services include: Information on fuelling and
charging stations for alternative fuel vehicles,
Vulnerable road user protection, On street
parking management and information, Off
street parking information, Park and ride
information, Connected and cooperative
navigation into and out of the city, and Traffic
information and Smart routing.</p>
      <p>This work identifies among the Day 1 and
Day 1.5 services the ones, which are
appropriate for implementation for traffic
management purposes. The distinction relies
first on the principle that such services are
based on V2I technologies, enabling the
infrastructure of traffic management centers to
have an added value role, and second on the
principle that the servics can have an impact on
the strategies. The following table presents the
selected C-ITS services and defines their
contribution to the strategies.</p>
      <p>Invehicle
signage
Traffic
informat
ion and
smart
routing
Probe
vehicle
data
informati</p>
      <p>on
Conditio</p>
      <p>ns/
restrictio</p>
      <p>ns
informati</p>
      <p>on
Lanes
status
downste</p>
      <p>am
informati</p>
      <p>on
Indirect
effect</p>
      <p>Speed
harmonizat
ion</p>
      <p>Speed
harmoniza</p>
      <p>tion</p>
      <p>Road
capacity
modificaat</p>
      <p>ions
Indirect
effect</p>
      <p>Road
capacity
modificati</p>
      <p>ons
Indirect
effect</p>
    </sec>
    <sec id="sec-3">
      <title>2.2. Operational process</title>
      <p>The objective of the operational process
defined in this work is to provide guidelines,
including concrete implementation steps, for
the real-life integration of C-ITS services into
daily operational traffic management. Based on
the methodology described above, the steps are
defined as follows:
1. Identification of policy objcetives.
2. Identification of the contribution, in
terms of impact, of the C-ITS services to
each of the four strategies.
3. Identification of the appropriate C-ITS
services which apply to each part of the road
network.
4. Establishment of the information
exchange between road authorities and
service providers on the objectives of the
former and on the available services of the
later.</p>
      <p>Having completed the above steps, the
operational process can be applied. An
indicative example for the application of the
operation process includes the case when a road
operator (traffic management centre) detects a
traffic jam in the network and wishes to tackle
the traffic problem. The road operator chooses
the strategy to enlarge the outflow by opening a
peak-hour lane for drivers. The road operator
provides this information to the service
providers. Service providers that own a related
C-ITS service, e.g, Traffic information and
smart routing, provide it to their customers
(drivers). These customers of the service
provider receive this information on their
personal devices (e.g. smartphones, tablets) as
a C-ITS service.</p>
    </sec>
    <sec id="sec-4">
      <title>3. Case study</title>
      <p>
        The case study presented in this work
concerns the city of Thessaloniki in Greece.
The city has a high number of circulating
vehicles and a dense road network, resulting to
several mobility challenges [
        <xref ref-type="bibr" rid="ref5">6</xref>
        ], [
        <xref ref-type="bibr" rid="ref6">7</xref>
        ]. These
challenges are currently addressed through the
deployment of C-ITS services through the
participation of the city in the C- MobILE
project, which focuses on large-scale
implementation and demonstration of C-ITS
services in European cities [
        <xref ref-type="bibr" rid="ref7">8</xref>
        ].
      </p>
      <p>Taking into account the steps defined in the
operational process, the policy objectives were
identified, in order to address the most common
traffic problems, i.e., traffic congestion,
parking problems and accidents. The policy
objcetives include:
• Accidents reduction
• Road safety increase
• Promotion of eco-friendly driving
• Provision of real-time information
• Optimization of traffic flow
• Increase traffic efficiency</p>
      <p>With regards to C-ITS services capable of
having an impact to the strategies, the following
ones have been selected to be applied at city
level:
• Road Works Warning
• Road Hazard Warning
• Green Light Optimal Speed Advisory
• In-Vehicle Signage.
• Flexible Infrastructure - Mode and Trip
Time Advice (Traffic information and Smart
routing).</p>
      <p>The third step of the operational process is
expressed through a table which provides a
mapping of the C-ITS services to the parts of
the road network with regards to the impact
they can have on the strategies.</p>
      <p>Li
nk
x
x
x
x
x
C-ITS
Service
Road
works
warnin</p>
      <p>g
Road
hazard
warnin</p>
      <p>g
Green
light
optimal
speed
advisor
y</p>
      <p>Invehicle
signage
Traffic
informa
tion
and
smart
routing
Probe
vehicle
data</p>
      <p>Cho
ice
nod
e
x
x</p>
      <p>The locations of the road network of
Thessaloniki, where the C-ITS services are
provided are presented in the figures below.</p>
      <p>Finally, the last includes the identification of
the roles and the relations of the stakeholders
participating in the operational process. For the
case of Thessaloniki, stakeholders and the
respective roles are identified as follows:</p>
      <p>The traffic manager is represented by the
traffic management center of the city, which is
operated by the Region of Central Macedonia
and collaborates with the service provider for
the coordinated provision of C-ITS services.</p>
      <p>The service provider is represented by the
Hellenic Institute of Transport, which is
responsible for the implementation of the
services and the communication of the
necessary data to and from the traffic
management center through the appropriate
software.</p>
      <p>The end-users are represented by
professional drivers of a taxi fleet company
operating in the city, as well as from regular
drivers using a dedicated Android application,
which provides access to the above mentioned
C-ITS services.</p>
    </sec>
    <sec id="sec-5">
      <title>4. Tool for C-ITS enabled</title>
    </sec>
    <sec id="sec-6">
      <title>Dynamic Traffic Management as a Service</title>
      <p>The application of the concept of C-ITS
enabled Dynamic Traffic Management as a
Service from traffic managers is achieved
through the use of CTMaaS, a software tool
developed by the Hellenic Institute of Transport
in the framework of the C-Mobile H2020
project. The software tool is comprised of
modules and applications with interfaces
between traffic managers, traffic information
service providers, fleet managers and
individual travelers. The objective is to enhance
and enable traffic management through the
coordinated provision of C-ITS services,
through monitoring and assessment of the set
targets, and through the efficient utilization of
large volumes of multi-source data.</p>
      <p>CTMaaS is comprised of two major
components: the Scenario Manager and the
Dashboard. The Scenario Manager component
allows the coordinated activation and
deactivation of C-ITS services within the
framework of Dynamic Traffic Management
strategies, aiming to solve specific traffic
problems.</p>
      <p>The Dashboard component allows the
visualization and analysis of real-time and
multi-source traffic data. The Dashboard
provides users with KPIs, line charts, bar
charts, tables and digital maps, allowing traffic
managers to easily monitor traffic conditions,
the impact of the deployed dynamic traffic
management strategies, as well as important
insights of the overall road traffic operations.</p>
    </sec>
    <sec id="sec-7">
      <title>5. Conclusions</title>
      <p>The proposed work has the objective to
suggest a concept which utilizes the emerging
C-ITS technologies, in order to achieve the
effective implementation of the goals set for
daily operational dynamic traffic management.
The proposed concept relies on the utilization
of multiple data sources with the purpose to
serve as an intermediary decision-support tool,
bridging conventional traffic management and
traffic information services provision.</p>
    </sec>
    <sec id="sec-8">
      <title>6. Acknowledgment</title>
      <p>This work has been executed in the context
of the C-MobILE project funded by the
European Union’s Horizon 2020 Research and
Innovation Programme.</p>
    </sec>
  </body>
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