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<dc:title>Communication technologies and data processing for safety</dc:title>
<dc:creator>SOLE, MARIELLA</dc:creator>
<dc:subject>mission critical environments</dc:subject>
<dc:subject>public safety</dc:subject>
<dc:subject>Settore ING-INF/03 - Telecomunicazioni</dc:subject>
<dc:description>Emergency workers comprise large professional groups like volunteer fire-fighters, police officers,&#xd;
emergency medical staff and so on. Their professions have to deal frequently with a considerable&#xd;
number of a combination of health and safety risk factors, which are often unavoidable.&#xd;
For example, workplace scenes demanding the intervention of emergency workers may be located&#xd;
in remote, difficult to access areas (mountains, sea, caves), and sometimes in extremely difficult&#xd;
weather conditions. Moreover, emergency workers must arrive very rapidly at the disaster scene at&#xd;
any time of the day or night, and there is always the possibility of car crashes or other transportation&#xd;
accidents on the journey to the disaster scene or to hospitals. Others examples are the industrial&#xd;
workplaces, which are inherently places with a high concentration of heavy machinery, fast&#xd;
handling equipments, high heat and pressure pipes, polluted and explosive areas where people work&#xd;
in a relatively small area.&#xd;
Therefore, in an environment where situational awareness and tactical decision making are critical&#xd;
elements to a successful operation, it is really important to have available efficient instruments to&#xd;
ensure the safety for all operators that work in the field.&#xd;
Despite the fact that a lot sophisticated solutions have been used for increasing request due to the&#xd;
growing need of safety concerns by the operators, the mission-critical environments are still&#xd;
considered high-risk environments with serious work safety related issues and higher accident rates&#xd;
than in other workplaces.&#xd;
This study focuses on the safety precautions in outdoor and indoor environments, safety&#xd;
communication and Personal Protective Equipment (PPE) and proposes solutions to ensure secure&#xd;
and reliable communications between forces deployed in the field and their dispatch center, which&#xd;
is often of decisive importance for the work of the emergency services, analyzing two different&#xd;
important case studies.&#xd;
Moreover, we have designed a control system intended as a platform for real-time information&#xd;
capable of monitoring, by means of camera and sensor data harvesting about people and vehicles&#xd;
movements. It provides automatic and semi-automatic risk prevention measures thanks to the work&#xd;
in progress on designing and implementing a first working prototype of sensor network based on&#xd;
RFID BAN. These capabilities are the topic of a larger research project that aims to find the optimal&#xd;
solution in terms of feasibility and practical implementation.&#xd;
To conclude our study, we have developed a indoor navigation system for mobile devices. The&#xd;
application is able to follow the user and it indicates the shortest path to achieve a specific&#xd;
destination. It uses only smartphone motion sensor and not requires the use of extra equipment.&#xd;
Moreover, thanks to an algorithm widely explained afterwards and the use of the gyroscope sensor&#xd;
rather than the compass, the mobile application ensure a very good orientation.&#xd;
The thesis is organized as following:&#xd;
- In the first chapter, to design a radio communication system both for health emergency&#xd;
services and Civil Protection services, different Professional Mobile Radio (PMR) standards&#xd;
was analized. PMR, also known as land mobile radio (LMR) in North America, are field radio&#xd;
communications systems which use portable, mobile, base station, and dispatch console&#xd;
radios. It has referred to a suite of radio mobile network tecnologies deployed for missioncritical&#xd;
users, which need high affordable communication system. In the specific, PMR&#xd;
networks provide radio services for closed user group, group call and push-to-talk, and call&#xd;
set-up times which are generally short compared with cellular system. In addition, they&#xd;
provide communications in extreme situations that might cause failures in other&#xd;
communications network, like 2G or 3G. As a result of the analysis of the main digital PMR&#xd;
standards (TETRA and DMR) used in European countries, we decided to use the DMR&#xd;
standard to design the radio network for 118 service in Sardinia and for Civil Protection&#xd;
service. DMR has been identified as the best solution, which grants cost saving, high&#xd;
coverage, spectral efficiency and simplicity in network configuration and it is well suitable in&#xd;
wide area with a low/medium density of traffic.&#xd;
- The second and third chapter of the thesis are focused on improvement of the safety of&#xd;
operators in a maritime cargo terminal. Hence, a new infrastructure of a maritime cargo&#xd;
terminal has been defined, using a control system for monitoring workplace safety. By&#xd;
combining, in the control system, the inputs from a Body Area Network (BAN) integrated in&#xd;
the safety equipment and from CCTV cameras, a human supervisor is able to achieve an&#xd;
accurate overview of the entire situation in terms of work safety and act accordingly when&#xd;
needed. In addition, we focused even on the design and implementation of a working&#xd;
prototype of an RFID-based BAN sensor network for actively monitoring and preventing&#xd;
workplace safety risks in the same industrial area. This first conceptual and technological&#xd;
analysis, together with the test implementation, is the forerunner of a complex monitoring&#xd;
system in development to be implemented both for the specific case and for any industrial&#xd;
environment.&#xd;
- The last chapter aims to describe an indoor navigation system developed for smartphone&#xd;
android. Specifically, it has been demonstrated how the use of a gyroscope sensor can brings&#xd;
more benefits respect to a compass sensor to get the best detected position.&#xd;
Nowadays, modern mobile devices, such as smartphones and PDAs in general, come to the market&#xd;
already equipped with sensors able to track them as they move, both in outdoor and indoor&#xd;
environment. The sensing technologies embedded in such devices make it ideal for a wide range of&#xd;
location-based services, such as navigation applications. An Inertial Navigation System (INS) uses&#xd;
motion and rotation sensors in order to determine the position, orientation, and velocity of a moving&#xd;
object/user without the need of external infrastructures. This is essential in an indoor environment&#xd;
where common localization systems, such as Global Positioning System (GPS), fail due to severe&#xd;
attenuation or obscuration of the satellite's signal. In inertial navigation systems, localization/&#xd;
orientation estimation is source-independent. The user's position is calculated in relation to a known&#xd;
starting position using a dead reckoning algorithm and the orientation is usually provided by a&#xd;
digital compass embedded in the smartphone. A digital compass sensor provides the orientation of&#xd;
the device relative to the magnetic north of the earth. However, when it is used in indoor&#xd;
environments, like any magnetic device, it is affected by significant error caused by nearby ferrous&#xd;
materials, as well as local electromagnetic fields. Such errors seriously affect the performance and&#xd;
the accuracy of the system, thus the need to investigate any alternative orientation technique. In the&#xd;
specific, we have developed an early prototype of a pedestrian navigation system for indoor&#xd;
environments based on dead reckoning, 2D barcodes and data from accelerometers and&#xd;
magnetometers. All the sensing and computing technologies of our solution are available in&#xd;
common smartphones. The prototype has been further improved by a new algorithm described&#xd;
afterwards and now it is able to estimate the correct current position of the user, track him inside the&#xd;
building and provide the best path to achieve a specific destination.</dc:description>
<dc:date>2014-03-31</dc:date>
<dc:type>info:eu-repo/semantics/doctoralThesis</dc:type>
<dc:identifier>http://hdl.handle.net/11584/266424</dc:identifier>
<dc:language>eng</dc:language>
<dc:relation>numberofpages:110</dc:relation>
<dc:rights>info:eu-repo/semantics/openAccess</dc:rights>
<dc:publisher>Università degli Studi di Cagliari</dc:publisher>
<dc:rights>license:Non specificato</dc:rights>
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