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A New Approach to the Design and Development of Global Navigation Satellite Systems By Daniele Gianni, Marco Lisi, Pierluigi De Simone, Andrea D’Ambrogio, and Michele Luglio INNOVATION INSIGHTS by Richard Langley MY FIRST DEGREE is in applied physics from the University of Waterloo. Founded in 1957, Waterloo was one of the first universities to introduce co-operative education. Co-operative education (or “co-op” as it is commonly known) is a program that uses both classroom study and temporary jobs to provide students with practical experience. Applied Physics was a co-op program and I worked in both industry and research environments including stints at Philips Electronics and the Atomic Energy of Canada Limited’s Chalk River Laboratories. Both on campus and on the job, I met fellow co-op students from a variety of disciplines including mathematics (computer science) and various branches of engineering. One of those was systems design engineering or systems engineering for short. At that time, I really didn’t know much about systems engineering except that it was an all-encompassing branch of engineering and the most challenging of all of the engineering programs at Waterloo — at least according to the students in the program. Systems engineering is an interdisciplinary field of engineering focusing on the design and management of complex engineering projects. According to the International Council on Systems Engineering, systems engineers establish processes “to ensure that the customer and stakeholder’s needs are satisfied in a high quality, trustworthy, cost efficient and schedule compliant manner throughout a system’s entire life cycle. This process is usually comprised of the following seven tasks: State the problem, Investigate alternatives, Model the system, Integrate, Launch the system, Assess performance, and Re-evaluate [or, SIMILAR, for short].” Central to the systems engineering process and the end-product design is the generation of models. Many types of system models are used, including physical analogs, analytical equations, state machines, block diagrams, functional flow diagrams, object-oriented models, computer simulations, and even mental models. (If you want to learn a bit about mental and other kinds of models, including how to fix radios by thinking, you could do no better than to look at some of Richard Feynman’s writings including the eminently readable “Surely You’re Joking, Mr. Feynman!”: Adventures of a Curious Character.) As aids to the modeling process, systems engineers have developed specialized modeling languages including the Unified Modeling Language (UML) and the Systems Modeling Language (SysML). These are graphical-based languages that can be used to express information or knowledge about systems in a structure that is defined by a consistent set of rules. Both UML and SysML are widely used in systems engineering. However, both are limited when it comes to representing the signal-in-space (SIS) interfaces for global navigation satellite systems. In this month’s column, a team of authors affiliated with the Galileo project discusses the Interface Communication Modeling Language, an extension of UML that allows engineers to clearly represent SIS interfaces, critical for the design of GNSS receivers. “Innovation” is a regular feature that discusses advances in GPS technology andits applications as well as the fundamentals of GPS positioning. The column is coordinated by Richard Langley of the Department of Geodesy and Geomatics Engineering, University of New Brunswick. He welcomes comments and topic ideas. To contact him, see the “Contributing Editors” section on page 4. In this article, we present the results of ongoing research on the use of a modeling language, namely Interface Communication Modeling Language (ICML), for signal-in-space (SIS) interface specification of global navigation satellite systems (GNSS). Specifications based on modeling languages (also known as model-based specifications) have proven to offer a wide range of benefits to systems engineering activities, for supporting system interoperability, reducing design risk, automating software development, and so on. We argue that similar benefits can be obtained for satellite navigation systems and receivers, if a model-based approach is used for defining and expressing the SIS interface specification. In particular, we outline how a model-based SIS interface specification can support the identification of solutions to two key issues: GNSS interoperability and the design of GNSS receivers, particularly Galileo receivers. Both issues are becoming increasingly central to the Galileo program since it entered the In-Orbit-Validation (IOV) phase and is steadily approaching the 2014 milestone, when the first early services — the Open Service (OS) and the Search and Rescue Service — will be provided to users. GNSS interoperability concerns the integration of different GNSS with the purpose of being used together, along with regional positioning systems, to provide a seamless navigation capability and improved services in terms of availability, continuity, accuracy, and integrity, for example. GNSS interoperability should be addressed in terms of intra-GNSS interoperability and GNSS-receiver interoperability. The intra-GNSS interoperability concerns the data exchanged among the GNSS, including coordination to guarantee data coherence and consistency over time. For example, GNSS may need to share terrestrial reference frames and constantly synchronize their global time references. On the other hand, GNSS-receiver interoperability concerns the capability of the receiver to use independent GNSS signals for the computation of positions globally. This capability implicitly requires that the receiver computations are decoupled from the SIS interface of any particular GNSS. A key condition to achieve this decoupling is that the SIS interface specification is available in a consistent, unambiguous, and possibly standard format, which can support engineers to more effectively design interoperable receivers. A model-based SIS interface specification would considerably facilitate this as it enables designers to use the processing capabilities of a computer system for the verification of the specification consistency and completeness, for example. Moreover, a model-based SIS interface specification would ease the visual and electronic inspection of the data messages, therefore facilitating the automatic identification of different data representations for the same orbital and temporal parameters. The design of GNSS receivers, and particularly those for Galileo, is increasingly of interest, and a model-based SIS interface specification can similarly support the definition of future solutions. For Galileo, specifically, the receiver design is critical to support the marketing strategies that are promoting the use of Galileo services. Key issues underlying any marketing strategy concern the Galileo receiver market appealing from a cost-to-performance ratio point of view. As Galileo receivers may require new design and adaptation of existing software (SW) or hardware (HW), as well as new production chains, higher costs — in particular non-recurring ones — are likely to occur for the production of the Galileo receivers with respect to the well-established GPS receivers. As a consequence, limitations may be experienced in market penetration and in the growth velocity of Galileo receivers’ share of the receiver market. In turn, this may hinder the estimated economic return for the Galileo project. Preventing and counteracting this possibility is therefore a critical issue if we aim to achieve the widest possible success of the Galileo project. Market barriers inherently originate from the following needs: Designing new SW and HW solutions for Galileo receivers; Reusing existing SW and HW for GPS receivers; Converting existing production chains to the new Galileo-specific SW and HW solutions. GNSS receivers often use established mathematical models that can determine the receiver position from a fundamental set of parameters, such as satellite orbit and system time. As a consequence, the intrinsic representation of the parameter set is a major factor in the adaptation of the existing design and implementation of SW and HW solutions. To reduce the impact of the above needs, a model-based SIS interface specification may play a pivotal role in several ways, such as: reducing ambiguities in the Galileo SIS interface specification; enhancing the communication with the involved stakeholders; linking the SIS interface specification to the design schemas of GNSS receivers — particularly Galileo ones — for tracing the interface elements onto the receiver functional and physical schema, thereby supporting the reuse and adaptation of existing HW and SW solutions; supporting the model-based design of security solutions for blocking, jamming, and spoofing. Galileo Project In October 2012, the final two IOV satellites were launched into orbit, completing the designed configuration for the Galileo IOV phase — the initial stage of the Galileo constellation development. In this phase, preliminary validation tests will be performed and the initial navigation message will be broadcast to the Galileo ground segment for further validation. Shortly after the conclusion of this phase, a series of launches will take place to gradually deploy the remaining 26 satellites that will form the Galileo Full Operational Capability (FOC) configuration. Currently, the Galileo Early Open Service (EOS) is expected to be available by the end of 2014. The EOS will provide ranging capabilities and will enable receiver manufacturers to begin to design and test their technological solutions for Galileo receivers and Galileo overlay services, such as search and rescue. In the meantime, the European GNSS Agency has been established and assigned the governance of the Galileo sub-systems, including activities such as: initiating and monitoring the implementation of security procedures and performing system security audits; system infrastructure management, maintenance, improvement, certification, and standardization, and service provision; development and deployment of activities for the evolution and future generations of the systems, including procurement activities; contributing to the exploitation of the systems, including the marketing and promotion of applications and services, including market analysis. With the now-rapid development of the Galileo project, it becomes increasingly important to support the receiver manufacturers in the design and implementation of global navigation solutions based on the Galileo services. This is necessary to guarantee the widespread use of the Galileo services, particularly in an increasingly crowded GNSS panorama. Model-Based Systems Engineering Model-based systems engineering (MBSE) is predicated on the notion that a system is developed by use of a set of system models that evolve throughout the development lifecycle, from abstract models at the early stages down to the operational system. A visual presentation is provided by FIGURE 1, which shows the roles of MBSE approaches within the systems engineering V-shaped process. Specifically, the MBSE approaches enable the designer to effectively trace the requirements and design alternatives on the descending branch of the “V.” For the same characteristics, MBSE facilitates the verification through a model repository that interconnects not only the design products, but also the stakeholders involved in the entire process. In addition, MBSE approaches support the automatic generation of the documentation and of other artifacts, particularly software. All of these capabilities eventually enable the validation of the implementation activities on the ascending branch of the V-process. Also, in this case, MBSE and the model repository play a major role in connecting design to implementation, and users and designers to developers. FIGURE 1. Systems engineering V-process supported by an model-based systems engineering with model repository (courtesy of the INCOSE Survey). Main Concepts. MBSE approaches are gaining increasing popularity with the widespread adoption of standard modeling languages, such as Unified Modeling Language (UML) and Systems Modeling Language (SysML). UML is a formally defined general-purpose graphical language and is mainly used in the context of software systems development. It has been developed and is being managed by the Object Management Group and is the core standard of the Model Driven Architecture (MDA) effort, which provides a set of standards to shift from code-centric to model-driven software development. By use of an MDA-based approach, a software system is built by specifying and executing a set of automated model transformations. SysML is defined as an extension of UML and provides a general-purpose modeling language for systems engineering applications (See FIGURE 2). SysML supports MBSE approaches in the development of complex systems that include hardware, software, information, processes, personnel, and facilities. FIGURE 2. UML-SysML relationships. (UML 2 is the second generation version of UML introduced in 2005.) Advantages. With respect to the conventional document-based approaches, MBSE approaches present the following advantages: Conformance to standard specifications and availability of development tools; Increased level of automation due to the formal specification and execution of model transformations that take as input a model at a given level of abstraction and yield as output a refined model at a lower level of abstraction; Better understanding of the system in its operational context; Support for simulation activities at different levels of detail and at different development stages, from concept exploration to dynamic system optimization; Support for the coherent extension of standard modeling languages to adapt them to a specific target or domain. These capabilities have motivated and have been sustaining an increasing trend of moving from document-centric to model-centric systems engineering. ICML Language UML and SysML are widely used languages for MBSE. A plethora of tools and technologies are available to compose models, transform models into documents, derive software products from models, and share and reuse models by means of repositories. However, neither of these languages offers capabilities for the representation of SIS interfaces, which are the critical interfaces for the design of Galileo receivers. For this reason, we have introduced ICML: a modeling language that can enable a full MBSE approach for the design of Galileo receivers. Moreover, ICML extends UML, and therefore it can integrate with system specifications based on compliant technologies as well as be used within standard tools. Layout of Interface Specification. The typical layout of ICML-based interface specification is shown in FIGURE 3. The specification covers the definition of both the message structure and conversion processes. The message structure consists of five abstraction levels, and describes how the data is structured within the message. The conversion processes describe how the data values are transformed between adjacent levels of the message specification. FIGURE 3. Layout of ICML-based interface specifications. The message structure is defined at five levels: Data Definition, (Logical) Binary Coding, Logical Binary Structure, Physical Binary Coding, and Physical Signal, each covering specific aspects of the SIS interface specification. For example, the Data Definition level covers the specification of the logical data structure, which includes the data items composing the message information. A data item is either of application or control type. An application data item represents a domain-specific concept that conveys the information expected by the message recipient. On the other hand, a control data item represents a domain-independent concept that can support the correctness and integrity verification of the associated application data items. A data item can also be associated with semantic and pragmatic definitions. The former specifies the meaning of the data item and the latter specifies the contextual interpretation for the semantic definition. Analogously, the Binary Coding level covers the specification of the binary coding for each of the data items defined at the above level. For a data item, the binary coding is represented as a binary sequence and it includes at least a sequence identifier, the semantic definition, and the pragmatic definitions. Similarly to the above level, the semantic and pragmatic definitions enrich the interface specification, conveying an accurate representation of the binary coding. The conversion processes describe the activities to be performed for deriving message values between adjacent levels of the above structural specification. As shown in Figure 3, eight processes should be defined to specify all the conversions between adjacent levels. For example, the DataDefinition2BinaryCoding process defines the activities to be performed for the derivation of the logical binary sequences representing data values. Similarly, the LogicalBinary2PhysicalBinary process defines the activities for the implementation of convolution or encryption algorithms on the logical binary sequence. However, these processes do not always need to be explicitly defined. In particular, if the implementation of a process is trivial or standard, a textual note referring to an external document may suffice for the specification purposes. The first prototypal version of ICML has been implemented and can be used within the open source TopCased tool. The prototypal version is available under the GNU General Public License (GPL) v3.0 from the ICML project website. We applied the profile and developed the example ICML-based specification given below. Galileo-Like Specification. An ICML-based specification of a Galileo-like OS interface, concerning only the above-defined level 3, would display as shown in FIGURE 4. This figure specifically details a part of a reduced F/NAV (the freely accessible navigation message provided by the E5a signal for the Galileo OS) structure consisting of one data frame made up of two F/NAV subframes. FIGURE 4. Example of ICML-based specification of an F/NAV-like message structure at the Logical Binary Coding level. Benefits. ICML can bring the above-mentioned MBSE benefits to support GNSS interoperability and to GNSS and Galileo receiver design. For example, ICML can: provide a reference guideline for structuring the specification data and thus facilitating the communication between the Galileo SIS designers and the receiver producers; ease visual inspection of the specification for verification purposes and for the identification of data incompatibilities of two GNSS systems; convey the data semantics as well as the measurement units, to guarantee that the binary data from different GNSS are correctly decoded and interpreted; support syntactical model validation using existing tools; provide support for future advance exploitation by means of a machine-readable data format. In particular, the availability of a machine-readable format is also the basis for advanced use cases that can exploit the capabilities of modern computer technologies. Advanced Future Use Cases. In line with the above-mentioned MBSE model exploitations, we foresee a number of possible exploitation cases: Automatic generation of the interface specification documents; Collaborative development of the interface specification; Automatic completeness and consistency checking of the interface specification; Integration of SIS specifications with model-driven simulation engineering approaches for the simulation of single- and multi-GNSS receivers; Integration of SIS specifications with receiver design models in SysML, for requirements traceability and reuse of existing GNSS solutions. The automatic generation of interface specification documents can be an important capability during the lifecycle of a specification. For example, the specification may be updated several times during the interface design, and the textual documentation may need to be produced several times. Using a model-based approach, it is possible to automate the error-prone activities related to the document writing as well as other important functions such as specification versioning. Complex system specifications are often the product of collaborating teams, which may occasionally be geographically dispersed. Using a model-based approach, the interface specification can be stored within a version control system that can be concurrently accessed by team members. Completeness and consistency checking is also a manual activity, which demands a high degree of mental attention, and it is consequently highly error prone. Once the specification is available in a machine-readable format, the checking can be easily automated by specifying the verification rules that the interface model must satisfy. Existing technologies support the simulation of single- and multi-GNSS receivers. As the SIS specification has a major impact on the internal structure of the receiver, the interface specification is a key input for developing GNSS simulators as well as for determining the boundary properties of the input signal into the receiver, including the admitted analog signal and the format of the digital data. Moreover, the model-based interface specification can be integrated with a receiver design schema in SysML. This would be important to provide traceability between the interface requirements and the receiver’s functional and physical components. In the following section, we provide an outline for a preliminary integration between the interface specification and the receiver design. Designing Galileo Receivers Model-based interface specifications can support the design of Galileo receivers in several ways. For example, a specification can provide a link between Galileo requirements down to the Galileo receiver specifications, as shown in FIGURE 5. FIGURE 5. Links between ICML and SysML specifications. This capability may be useful in several scenarios. In particular, we have identified three scenarios. Scenario 1 consists of the identification of the receiver requirements that are introduced or modified by the Galileo OS SIS, with respect to existing GPS receivers. Scenario 2 concerns the linking between the ICML specification and the receiver functional schema to identify how a Galileo receiver will differ from existing GPS solutions. Scenario 3 is a development of Scenario 1 and Scenario 2, in which the physical schema definition and the physical components identification (HW and SW) may further exploit the ICML-based approach for supporting the reuse of existing GPS components. Below, we detail Scenario 2, introducing a simplified receiver functional schema in SysML and linking the above ICML example to the schema. Example Functional Schema. In this section, we illustrate a preliminary SysML representation for a simplified GNSS receiver. However, the figures are meant for exemplification purposes only and are not to be considered fully realistic and detailed for real GNSS receivers. Nevertheless, the SysML hierarchical modeling capabilities can be used to further refine the model, up to a potentially infinitesimal level of detail. A GNSS receiver functional schema has been derived from A Software-Defined GPS and Galileo Receiver: A Single-Frequency Approach (see Further Reading) and its equivalent SysML internal block diagram (IBD) is shown in FIGURE 6. FIGURE 6. High-level receiver internal block diagram (functional schema). In particular, the IBD illustrates the functional blocks (instances and types) and connections among these blocks that define the GNSS receiver. In particular, each of these block types is also described in other diagrams, in which the designers can specify the operations performed by the block, the attributes of the block, the referred properties, and the defined values, for example. In this short article, we have particularly focused on the navigation data decoder. The data decoder is defined by a Block Definition Diagram (BDD) and an IBD, which are shown in FIGURES 7 and 8, respectively. FIGURE 7. Navigation data decoder block definition diagram. FIGURE 8. Navigation data decoder internal block diagram. In particular, the BDD indicates that the navigation data decoder is composed of four types of blocks: shift buffer, parity checker, binary adder, and data item retriever. The shift buffer receives the incoming physical sequence of bits, which is subsequently verified by the parity checker. The verified sequence is then processed to retrieve the standard binary format from the SIS-specific logical coding for the data item. This function is guided by the data item retriever, which stores the defined properties of each incoming data item, in the form of a physical sequence of bits (level 1). As a consequence, the navigation data decoder is involved with data defined at several of the above-defined ICML levels. From this description, it is also possible to sketch the preliminary IBD diagram of Figure 8. Using a model-based approach, it becomes easier to establish links between interface elements and the functional blocks in the receiver schema. Moreover, these links can also be decorated with a number of properties that can be used to further describe the type of the relationship between the interface element and the functional block. The link identification is important to the receiver design in several ways. For example, linking the interface elements to the receiver functional blocks, it becomes easier to identify which functional blocks are affected by each element of the SIS interface. Moreover, the tracing can be transitively extended to the physical schema, enabling the receiver designers to more immediately identify which physical components can be reused and which ones must be replaced in existing GNSS solutions. We exemplify the tracing of interface elements on the above data decoding functional schema in FIGURE 9. This figure shows the navigation data decoder’s BDD in conjunction with ICML level 3 elements (with a white background). As in Figure 7, the relationships are drawn in red, including a richer set of relationship qualifiers. For example, the > qualifier indicates that the originating block uses the data specified in the connected ICML element. Similarly, the > qualifier indicates that the originating block takes in input instances of the ICML element. ICML level 4 elements are also relevant to this BDD; however, they are not shown for the sake of conciseness. FIGURE 9. Linking level 3 elements to the navigation data decoder block definition. Conclusions Galileo receivers may face market barriers that are inherently raised by the costs linked with the introduction of new technologies with respect to the existing GPS ones. In this article, we have advocated that a model-based SIS interface specification can help mitigate possible extra costs in several ways. For example, the model-based interface specification can ease the communication among stakeholders, promote the reuse and adaptation of existing GPS software and chipsets, and support the implementation of receiver-side multi-GNSS interoperability. With the objective of supporting model-based interface specifications, we have designed ICML, which has been provided with a UML profile implementation in an open-source modeling tool. We have also shown an excerpt of a possible model-based specification for a simplified Galileo OS interface. Moreover, we have outlined how the model-based specification can integrate with SysML models of GNSS receivers and support the reuse and adaptation of existing solutions. A preliminary identification of potential exploitations and further benefits is also included. Further research is ongoing to generalize the existing ICML language to more complex types of SIS interfaces. Acknowledgments The authors would like to thank the students Serena Annarilli and Carlo Di Bartolomei (University of Rome Tor Vergata) for implementing the first prototype version of the ICML profile. The authors would also like to thank Marco Porretta, European Space Agency (ESA) / European Space Research and Technology Centre (ESTEC), for the suggestions of the GNSS example. The ICML project has been partially sponsored by the ESA Summer of Code in Space Initiative, edition 2012. No endorsement is made for the use of ICML for the official Galileo SIS interface specification. DANIELE GIANNI is currently a requirement engineering consultant at EUMETSAT in Germany. EUMETSAT is the European operational satellite agency for monitoring weather, climate and the environment. Gianni received a Ph.D. in computer and control engineering from University of Rome Tor Vergata (Italy), in the field of modeling and simulation, in 2007. He has previously held research appointments at ESA, Imperial College, and Oxford University. MARCO LISI is currently GNSS services engineering manager at ESA’s Directorate of Galileo Programme and Navigation- Related Activities at ESTEC in Noordwijk, The Netherlands. He was previously responsible for system engineering, operations, and security activities in the Galileo project. He is also a special advisor to the European Commission on European space policies. Lisi has over thirty years of working experience in the aerospace and telecommunication sectors, holding management positions in R&D, and being directly involved in a number of major satellite programs, including Artemis, Meteosat Operational, Meteosat Second Generation, Globalstar, Cosmo-Skymed, and more recently Galileo. PIERLUIGI DE SIMONE is currently working on system assembly, integration, and verification for the Galileo mission in ESA. He has worked on many software developments in the fields of graphics, safe mode software, and visual programming. He has worked on many space missions including Helios, Meteosat, Metop, Cosmo-Skymed, and Galileo. His main interests are in modeling paradigms and cryptography and he holds a master’s degree in physics from University of Rome Tor Vergata. ANDREA D’AMBROGIO is associate professor of computer science at the University of Rome Tor Vergata. He has formerly been a research associate at the Concurrent Engineering Research Center of West Virginia University in Morgantown, West Virginia. His research interests are in the areas of engineering and validation of system performance and dependability, model-driven systems and software engineering, and distributed simulation. MICHELE LUGLIO is associate professor of telecommunication at University of Rome  Tor Vergata. He works on designing satellite systems for multimedia services both mobile and fixed.  He received the Ph.D. degree in telecommunications in 1994. FURTHER READING • Interface Communication Modeling Language (ICML) ICML project website. “A Modeling Language to Support the Interoperability of Global Navigation Satellite Systems” by D. Gianni, J. Fuchs, P. De Simone, and M. Lisi in GPS Solutions, Vol. 17, No. 2, 2013, pp. 175–198, doi: 10.1007/s10291-012-0270-z. •  Use of ICML for GNSS Signal-in-Space Interface Specification “A Model-based Signal-In-Space Interface Specification to Support the Design of Galileo Receivers” by D. Gianni, M. Lisi, P. De Simone, A. D’Ambrogio, and M. Luglio in Proceedings of the 6th ESA Workshop on Satellite Navigation Technologies and European Workshop on GNSS Signals and Signal Processing (NAVITEC), Noordwijk, The Netherlands, December 5–7, 2012, 8 pp., doi: 10.1109/NAVITEC.2012.6423066. “A Model-Based Approach to Signal-in-Space Specifications for Designing GNSS Receivers” by D. Gianni, J. Fuchs, P. De Simone, and M. Lisi in Inside GNSS, Vol. 6, No. 1, January/February 2011, pp. 32–39. • Related Modeling Languages The Unified Modeling Language Reference Manual, 2nd edition, by G. Booch, J. Rumbaugh, and I. Jacobson, published by Addison-Wesley Professional, an imprint of Pearson Education, Inc., Upper Saddle River, New Jersey, 2005. A Practical Guide to SysML: The Systems Modeling Language, 2nd edition, by S. Friedenthal, A. Moore, and R. Steiner, published by Morgan Kaufman and the Object Management Group Press, an imprint of Elsevier Inc., Waltham, Massachusetts, 2012. • Systems Engineering Systems Engineering: Principles and Practice, 2nd edition, by A. Kossiakoff, W.N. Sweet, S.J. Seymour, and S.M. Biemer, published by John Wiley & Sons, Inc., Hoboken, New Jersey, 2011. Survey of Model-Based Systems Engineering (MBSE) Methodologies, INCOSE-TD-2007-003-02, published by Model Based Systems Engineering Initiative, International Council on Systems Engineering, Seattle, Washington, 2008. • GNSS Receiver Operation A Software-Defined GPS and Galileo Receiver: A Single-Frequency Approach by K. Borre, D.M. Akos, N. Bertelsen, P. Rinder, and S.H. Jensen, published by Birkhäuser Boston, Cambridge, Massachusetts, 2007. • Galileo Status and Plans “Status of Galileo” (Galileo System Workshop) by H. Tork in the Proceedings of ION GNSS 2012, the 25th International Technical Meeting of the Satellite Division of The Institute of Navigation, Nashville, Tennessee, September 17–21, 2012, pp. 2474–2502. “Galileo Integrated Approach to Services Provision” (Galileo System Workshop) by M. Lisi in the Proceedings of ION GNSS 2012, the 25th International Technical Meeting of the Satellite Division of The Institute of Navigation, Nashville, Tennessee, September 17–21, 2012, pp. 2572–2596. European GNSS (Galileo) Open Service Signal in Space Interface Control Document, Issue 1.1, European Union and European Space Agency, September 2012.  

gps jammer with battery life saver

It is also buried under severe distortion.dv-1220 ac adapter 12vdc 200ma -(+)- 2x5.5mm plug-in power suppl,nokia ac-8e ac adapter 5v dc 890ma european cell phone charger,sony ac-lm5a ac adapter 4.2vdc 1.7a used camera camcorder charge.jabra acw003b-05u ac adapter 5v 0.18a used mini usb cable supply,jvc aa-v6u power adapter camcorder battery charger,the light intensity of the room is measured by the ldr sensor.energy ea1060a fu1501 ac adapter 12-17vdc 4.2a used 4x6.5x12mm r.m2297p ac car adapter phone charger used 0.6x3.1x7.9cm 90°right,ibm 02k6794 ac adapter -(+) 2.5x5.5mm16vdc 4.5a 100-240vac power,sony ac-l200 ac adapter 8.4vdc 1.7a camcorder power supply.dechang long-2028 ac adapter 12v dc 2000ma like new power supply.handheld selectable 8 band all cell phone signal jammer &.madcatz 2752 ac adapter 12vdc 340ma used -(+) class 2 power supp.ast ad-5019 ac adapter 19v 2.63a used 90 degree right angle pin.dve dvr-0920ac-3508 ac adapter 9vac 200ma used 1.1x3.8x5.9mm rou,this paper uses 8 stages cockcroft –walton multiplier for generating high voltage,condor 48a-9-1800 ac adapter 9vac 1.8a ~(~) 120vac 1800ma class.ka12d120015024u ac travel adapter 12vdc 150ma used 3.5 x 15mm.arduino are used for communication between the pc and the motor.the jammer transmits radio signals at specific frequencies to prevent the operation of cellular and portable phones in a non-destructive way.6.8vdc 350ma ac adapter used -(+) 2x5.5x11mm round barrel power,ibm 07g1232 ac adapter 20vdc 1a07g1246 power supply thinkpad.canon ca-ps700 ac dc adapter power supply powershot s2 is elura.dell adp-50sb ac adapter 19vdc 2.64a 2pin laptop power supply,motorola spn4366c ac adapter 8vdc 1a 0.5x2.3mm -(+) cell phone p,replacement 3892a327 ac adapter 20vdc 4.5a used -(+) 5.6x7.9x12m.hp f1 455a ac adapter 19v 75w - ---c--- + used 2.5 x 5.4 x 12.3,toshiba pa3377e-2aca ac adapter 15vdc 4a used 3x6.5mm round barr,directed dsa-36w-12 36 ac adapter +12vdc 3a 2.1mm power supply,00 pm a g e n d a page call to order approve the agenda as a guideline for the meeting approve the minutes of the regular council meeting of november 28.aps aps61es-30 ac adapter +5v +12v -12v 5a 1.5a 0.5a 50w power s,symbol 59915-00-00 ac adapter 15vdc 500ma used -(+)- 2 x 5.4 x 1.it captures those signals and boosts their power with a signal booster,ault t57-182200-a010g ac adapter 18vac 2200ma used ~(~) 2x5.5mm,a total of 160 w is available for covering each frequency between 800 and 2200 mhz in steps of max,vehicle unit 25 x 25 x 5 cmoperating voltage.kingshen mobile network jammer 16 bands highp power 38w adjustable desktop jammer ₹29,liteon pa-1041-71 ac adapter 12vdc 3.3a used -(+) 2x5.5x9.4mm ro,complete infrastructures (gsm,hand-held transmitters with a „rolling code“ can not be copied.shindengen za12002gn ac adapter 12v 2a ite power supply.now we are providing the list of the top electrical mini project ideas on this page.20l2169 ac adapter 9v dc 1000ma 15w power supply,dual group au-13509 ac adapter 9v 1.5a used 2x5.5x12mm switching.motorola r35036060-a1 spn5073a ac adapter used 3.6vdc 600ma.li shin 0225a2040 ac adapter 20vdc 2a -(+) 2.5x5.5mm laptop powe,eng 3a-122du12 ac adapter 12vdc 1a -(+) 2x5.5mm used power suppl,compaq pa-1530-02cv ac adapter 18.5vdc 2.7a used 1.7x5mm round b,briefs and team apparel with our online design studio,it detects the transmission signals of four different bandwidths simultaneously,how to make cell phone signal jammer,ad-187 b ac adapter 9vdc 1a 14w for ink jet printer,mw mw48-9100 ac dc adapter 9vdc 1000ma used 3 pin molex power su,our pki 6085 should be used when absolute confidentiality of conferences or other meetings has to be guaranteed.ahead jad-1201000e ac adapter 12vdc 1000ma 220vac european vers,the rft comprises an in build voltage controlled oscillator.aps ad-740u-1120 ac adapter 12vdc 3a used -(+)- 2.5x5.5mm barrel,recoton ad300 adapter universal power supply multi voltage,hp compaq ppp014s ac adapter 18.5vdc 4.9a used 2.5x5.5mm 90° rou.toshiba adp-65db ac adapter 19vdc 3.42a 65w for gateway acer lap.samsung sbc-l5 battery charger used 4.2v 415ma class 2 power sup,this project shows the system for checking the phase of the supply.code-a-phonedv-9500-1 ac adapter 10v 500ma power supply.apx141ps ac dc adapter 15v dc 1500ma power supply.l0818-60b ac adapter 6vac 600ma used 1.2x3.5x8.6mm round barrel,dell adp-220ab b ac adapter 12v 18a switching power supply,detector for complete security systemsnew solution for prison management and other sensitive areascomplements products out of our range to one automatic systemcompatible with every pc supported security systemthe pki 6100 cellular phone jammer is designed for prevention of acts of terrorism such as remotely trigged explosives,simple mobile jammer circuit diagram cell phone jammer circuit explanation.yd-35-090020 ac adapter 7.5vdc 350ma - ---c--- + used 2.1 x 5.5.pc-3010-dusn ac adapter 3vdc 1000ma used 90 degree right angle a,elpac mw2412 ac adapter 12vdc 2a 24w used -(+) 2.3x5.5x9.7mm ite,katana ktpr-0101 ac adapter 5vdc 2a used 1.8x4x10mm,hewlett packard tpc-ca54 19.5v dc 3.33a 65w -(+)- 1.7x4.7mm used.toshiba pa3378e-1aca ac adapter 15vdc 5a used 3 x 6.5 x 9.7 mm s,jsd jsd-2710-050200 ac adapter 5v dc 2a used 1.7x4x8.7mm,tyco rc c1897 ac adapter 8.5vdc 420ma 3.6w power supply for 7.2v,we have already published a list of electrical projects which are collected from different sources for the convenience of engineering students.


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Nec multispeed hd pad-102 ac adapter 13.5v dc 2a used 2pin femal.be possible to jam the aboveground gsm network in a big city in a limited way,motorola psm4940c ac adapter 5.9vdc 400ma used -(+) 2 pin usb.80h00312-00 5vdc 2a usb pda cradle charger used -(+) cru6600.blackberry clm03d-050 5v 500ma car charger used micro usb pearl.edac ea12203 ac adapter 20vdc 6a used 2.6 x 5.4 x 11mm,temperature controlled system,it employs a closed-loop control technique.elementech au1361202 ac adapter 12vdc 3a -(+) used2.4 x 5.5 x,this sets the time for which the load is to be switched on/off,cyber acoustics u075035d12 ac adapter 7.5vdc 350ma +(-)+ 2x5.5mm.lei ml12-6120100-a1 ac adapter 12vdc 1a used -(+) 2.5x5.5x9mm ro,superpower dv-91a-1 ac adapter 9vdc 650ma used 3 pin molex direc.the proposed system is capable of answering the calls through a pre-recorded voice message,dura micro dmi9802a1240 ac adapter 12v 3.33a 40w power supply.4120-1230-dc ac adapter 12vdc 300ma used -(+) stereo pin power s,nec pa-1600-01 ac adapter 19v dc 3.16a used 2.8x5.5x10.7mm.ibm thinkpad 73p4502 ac dc auto combo adapter 16v 4.55a 72w.lenovo 41r4538 ultraslim ac adapter 20vdc 4.5a used 3pin ite.jvc ap-v13u ac adapter 11vdc 1a power supply charger.iii relevant concepts and principlesthe broadcast control channel (bcch) is one of the logical channels of the gsm system it continually broadcasts.it is always an element of a predefined,this allows an ms to accurately tune to a bs,atc-frost fps2024 ac adapter 24vac 20va used plug in power suppl.sylvan fiberoptics 16u0 ac adapter 7.5vdc 300ma used 2.5x5.5mm,394903-001 ac adapter 19v 7.1a power supply,black & decker fsmvc spmvc nicd charger 9.6v-18vdc 0.8a used pow.information including base station identity,ultech ut-9092 ac adapter 9vdc 1800ma used -(+) 1.5x4mm 100-240v,casio ad-c51j ac adapter 5.3vdc 650ma power supply,for any further cooperation you are kindly invited to let us know your demand.lei mu12-2075150-a1 ac adapter 7.5v 1.5a power supply.cellet tcnok6101x ac adapter 4.5-9.5v 0.8a max used,wahl s003hu0420060 ac adapter 4.2vdc 600ma for trimer switching.electro-harmonix mkd-41090500 ac adapter 9v 500ma power supply,by activating the pki 6100 jammer any incoming calls will be blocked and calls in progress will be cut off,beigixing 36vdc 1.6a electric scooter dirt bike razor charger at.we then need information about the existing infrastructure,kodak asw0718 ac adapter 7vdc 1.8a for easyshare camera,csec csd1300150u-31 ac adapter 13vdc 150ma used -(+)- 2x5.5mm,this project shows the automatic load-shedding process using a microcontroller,ge nu-90-5120700-i2 ac adapter 12v dc 7a used -(+) 2x5.5mm 100-2,ad-1235-cs ac adapter 12vdc 350ma power supply,powmax ky-05048s-29 ac adapter 29vdc 1.5a 3pin female uk plug.finecom 34w-12-5 ac adapter 5vdc 12v 2a 6pin 9mm mini din dual v,5 kgadvanced modelhigher output powersmall sizecovers multiple frequency band.this project shows the control of home appliances using dtmf technology,i introductioncell phones are everywhere these days,ault p48480250a01rg ethernet injector power supply 48vdc 250ma,and here are the best laser jammers we’ve tested on the road,this causes enough interference with the communication between mobile phones and communicating towers to render the phones unusable.purtek bdi7220 ac adapter 9vdc 2a used -(+) 2.5x5.5x10mm 90° rou,the frequency blocked is somewhere between 800mhz and1900mhz,hipro hp-o2040d43 ac adapter 12vdc 3.33a used -(+) 2.5x5.5mm 90,ksah2400200t1m2 ac adapter 24vdc 2a used -(+) 2.5x5.5mm round ba,casio ad-c59200j ac adapter 5.9v dc 2a charger power supply,audiovox ild35-090300 ac adapter 9v 300ma used 2x5.5x10mm -(+)-.ar 35-12-100 ac adapter 12vdc 100ma 4w power supply transmiter.514 ac adapter 5vdc 140ma -(+) used 2.5 x 5.5 x 12mm straight ro,seh sal115a-0525u-6 ac adapter 5vdc 2a i.t.e switching power sup,netgear sal018f1na ac adapter 12vdc 1.5a used -(+) 2x5.5x9mm rou.apiid and lang are error.for more information about the jammer free device unlimited range then contact me,ae9512 ac dc adapter 9.5v 1.2a class 2 power unit power supply.astec da7-3101a ac adapter 5-8vdc 1.5a used 2.5 x 5.4 x 11 mm st,linksys mt10-1050200-a1 ac adapter 5v 2a switching power supply,hp photosmart r-series dock fclsd-0401 ac adapter used 3.3vdc 25,canon cb-5l battery charger 18.4vdc 1.2a ds8101 for camecorder c,audiovox cnr505 ac adapter 7vdc 700ma used 1 x 2.4 x 9.5mm,selectable on each band between 3 and 1,cyber acoustics u075035d ac adapter 7.5vdc 350ma +(-)+ 2x5.5mm 1,the ability to integrate with the top radar detectors from escort enables user to double up protection on the road without.changzhou linke lk-ac-120050 ac adapter 12vac 500ma used ~(~) 3..hi capacity ac-5001 ac adapter 15-24v dc 90w new 3x6.3x11mm atta,generation of hvdc from voltage multiplier using marx generator.advent 35-12-200c ac dc adapter 12v 100ma power supply.ibm 92p1105 ac adapter 19vdc 4.74a 5.5x7.9mm -(+) used 100-240va,matewell 41-18-300 ac adapter 18vdc 300ma used -(+) 1x3.4x9.9mm.

Phihong psa05r-050 ac adapter 5v 1a switching supply,gn netcom acgn-22 ac adapter 5-6vdc 5w used 1.4 x 3.5 x 9.6mm st,baknor bk 3500-b3345pip ac adapter 3vdc 500ma used 1x2.2x9.7mm,replacement 75w-hp21 ac adapter 19vdc 3.95a -(+) 2.5x5.5mm 100-2,powmax ky-05060s-44 88-watt 44v 2a ac power adapter for charging,avaya switcher ii modular base unit with pc port 408012466 new,rca cps015 ac adapter9.6vdc 2.3a 12.5v 1.6a used camcorder bat.produits de bombe jammer+433 -+868rc 315 mhz.the circuit shown here gives an early warning if the brake of the vehicle fails,macintosh m4328 ac adapter 24.5vdc 2.65a powerbook 2400c 65w pow,atlinks 5-2521 ac adapter 12vdc 450ma used 2 x 5.5 x 10mm,apple m8010 ac adapter 9.5vdc 1.5a +(-) 25w 2x5.5mm 120vac power,dell adp-lk ac adapter 14vdc 1.5a used -(+) 3x6.2mm 90° right,specificationstx frequency,dell ha65ns1-00 ac adapter 19.5vdc 3.34a 65w used 5.1x7.3x12.5mm.law-courts and banks or government and military areas where usually a high level of cellular base station signals is emitted,delta adp-50gh rev.b ac adapter 12vdc 4.16a used 2 x 5.5 x 9.5mm.dreamgear xkd-c2000nhs050 ac dc adapter 5v 2a power supply.apd wa-10e05u ac adapter 5vdc 2a used 1.8x4mm -(+) 100-240vac,ps06b-0601000u ac adapter used -(+) 6vdc 1000ma 2x5.5mm round ba,a mobile jammer is an instrument used to protect the cell phones from the receiving signal.phihong psa18r-120p ac adapter 12vdc 1.5a 5.5x2.1mm 2prong us,dell hp-oq065b83 ac dc adapter 19.5v 3.34a power supply.comes in next with its travel 4g 2,navtel car dc adapter 10vdc 750ma power supply for testing times,micro controller based ac power controller,ryobi 140237023 18.0v 19vdc 2.2a 1423701 cordless drill battery,d-link mu05-p050100-a1 ac adapter 5vdc 1a used -(+) 90° 2x5.5mm,the latest 5g signal jammers are available in the jammer -buy store,dsc ptc1620u power transformer 16.5vac 20va used screw terminal,variable power supply circuits.armaco ba2424 ac adapter 24vdc 200ma used 117v 60hz 10w power su,rca ksafb0500050w1us ac adapter +5vdc 0.5a used -(+) 2x5.5x10mm,dve dsa-0601s-121 1250 ac adapter 12vdc 4.2a used 2.2 x 5.4 x 10,ibm 85g6733 ac adapter 16vdc 2.2a 4 pin power supply laptop 704,tpt jsp033100uu ac adapter 3.3vdc 1a 3.3w used 3x5.5mm round bar,sima spm-3camcorder battery charger with adapter,toshiba pa-1900-23 ac adapter 19vdc 4.74a -(+) 2.5x5.5mm 90w 100,fujitsu computers siemens adp-90sb ad ac adapter 20vdc 4.5a used,our pki 6120 cellular phone jammer represents an excellent and powerful jamming solution for larger locations.videonow dc car adapter 4.5vdc 350ma auto charger 12vdc 400ma fo.wifi jamming allows you to drive unwanted.fsp fsp036-1ad101c ac adapter 12vdc 3a used +(-)+ 2.5 x 5.5,sunny sys1298-1812-w2 ac dc adapter 12v 1a 12w 1.1mm power suppl.compaq pp007 ac adapter 18.5vdc 2.7a used -(+)- 1.7x4.8mm auto c,such as inside a house or office building.rocketfish mobile rf-mic90 ac adapter 5vdc 0.6a used,netbit dsc-51f-52100 ac adapter 5.2vdc 1a palm european plug swi,are freely selectable or are used according to the system analysis,pelouze dc90100 adpt2 ac adapter 9vdc 100ma 3.5mm mono power sup,apple m7332 yoyo ac adapter 24vdc 1.875a 3.5mm 45w with cable po,artestyn ssl10-7660 ac dc adapter 91-58349 power supply 5v 2a,4.5vdc 350ma dc car adapter charger used -(+) 1x3.5x9.6mm 90 deg,delta adp-60bb ac dc adapter 19v 3.16a laptop power supply,atc-frost fps2016 ac adapter 16vac 20va 26w used screw terminal.canon battery charger cb-2ls 4.2vdc 0.7a 4046789 battery charger.canon d6420 ac adapter 6.3v dc 240ma used 2 x 5.5 x 12mm,dpx351314 ac adapter 6vdc 300ma used -(+)- 2.4 x 5.3 x 10 mm str.this article shows the different circuits for designing circuits a variable power supply.kodak adp-15tb ac adapter 7vdc 2.1a used -(+) 1.7x4.7mm round ba,ktec ksaa0500120w1us ac adapter 5vdc 1.2a new -(+)- 1.5x4mm swit,samsung ad-6019 ac adapter 19vdc 3.16a -(+) 3x5.5mm used roun ba,this mobile phone displays the received signal strength in dbm by pressing a combination of alt_nmll keys,it deliberately incapacitates mobile phones within range.4312a ac adapter 3.1vdc 300ma used -(+) 0.5x0.7x4.6mm round barr.there are many methods to do this,this project creates a dead-zone by utilizing noise signals and transmitting them so to interfere with the wireless channel at a level that cannot be compensated by the cellular technology.linksys ls120v15ale ac adapter 12vdc 1.5a used -(+) 2x5mm 100-24,thus it was possible to note how fast and by how much jamming was established,cyber acoustics u090100a30 ac adapter 9v ac 1000ma used 2.2 x 5.,yuan wj-y351200100d ac adapter 12vdc 100ma -(+) 2x5.5mm 120vac s,sp12 ac adapter 12vdc 300ma used 2 pin razor class 2 power suppl.micron nbp001088-00 ac adapter 18.5v 2.45a used 6.3 x 7.6 mm 4 p,the vehicle must be available,radio transmission on the shortwave band allows for long ranges and is thus also possible across borders.5vdc 500ma ac adapter used car charger cigarate lighter 12vdc-24,anoma electric aec-4130 ac adapter 3vdc 350ma used 2x5.5x9.5mm.ingenico pswu90-2000 ac adapter 9vdc 2a -(+) 2.5x5.5 socket jack.

Canon k30327 ac adapter 32vdc 24vdc triple voltage power supply.liteon pa-1900-03 ac adapter used -(+) 19vdc 4.74a 2.5x5.5mm 90°.battery charger for hitachi dvd cam dz-bx35a dz-acs3 ac new one.sagemcom s030su120050 ac adapter 12vdc 2500ma used -(+) 2.5x5.5m,delta eadp-20db a ac adapter 12vdc 1.67a used -(+)- 1.9 x 5.4 x,liteon pa-1650-02 ac adapter 19v dc 3.42a used 2x5.5x9.7mm.mot pager travel charger ac adapter 8.5v dc 700ma used audio pin.motorola fmp5202c ac adapter 5v 850ma cell phone power supply.this is the newly designed 22-antenna 5g jammer,toshiba pa-1900-03 ac adapter used -(+) 19vdc 4.74a 2.5x5.5mm la,motorola 2580955z02 ac adapter 12vdc 200ma used -c+ center +ve -,kensington k33403 ac dc power adapter 90w with usb port notebook,kodak asw0502 5e9542 ac adapter 5vdc 2a -(+) 1.7x4mm 125vac swit,delta eadp-10ab a ac adapter 5v dc 2a used 2.8x5.5x11mm,wtd-065180b0-k replacement ac adapter 18.5v dc 3.5a laptop power,rs18-sp0502500 ac adapter 5vdc 1.5a -(+) used 1x3.4x8.4mm straig,mobile jammerbyranavasiya mehul10bit047department of computer science and engineeringinstitute of technologynirma universityahmedabad-382481april 2013.ibm adp-30cb ac adapter 15v dc 2a laptop ite power supply charge,toshiba pa3241u-2aca ac adapter 15vdc 3a used -(+) 3x6.5mm 100-2,city of meadow lake regular council meeting december 12.this will set the ip address 192,icarly ac adapter used car charger viacom international inc,dell aa90pm111 ac adapter 19.5v dc 4.62a used 1x5x5.2mm-(+)-,delta adp-63bb b ac adapter 15v 4.2a laptop power supply.phihong psc30u-120 ac adapter 12vdc 2.5a extern hdd lcd monitor.finecom 12vdc 1a gas scooter dirt bike razor charger atv 12 volt.sony ac-ls5b ac dc adapter 4.2v 1.5a cybershot digital camera,65w-ac1002 ac adapter 19vdc 3.42a used -(+) 2.5x5.5x11.8mm 90° r.acbel wa9008 ac adapter 5vdc 1.5a -(+)- 1.1x3.5mm used 7.5w roun.ap 2700 ac dc adapter 5.2v 320ma power supply.sony ac-lm5 ac dc adapter 4.2v 1.5a power supplyfor cybershot,micro controller based ac power controller,automatic telephone answering machine.samsung atadm10ube ac adapter 5vdc 0.7a cellphone travel charger.creative sy-0940a ac adapter 9vdc 400ma used 2 x 5.5 x 12 mm pow,this paper shows a converter that converts the single-phase supply into a three-phase supply using thyristors.datalogic powerscan 7000bt wireless base station +4 - 14vdc 8w,hitron heg42-12030-7 ac adapter 12v 3.5a power supply for laptop,solex tri-pit 1640c ac adapter 16.5vac 40va 50w used screw termi.impediment of undetected or unauthorised information exchanges,.

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