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Generating Distorted GNSS Signals Using a Signal Simulator By Mathieu Raimondi, Eric Sénant, Charles Fernet, Raphaël Pons, Hanaa Al Bitar, Francisco Amarillo Fernández, and Marc Weyer INNOVATION INSIGHTS by Richard Langley INTEGRITY. It is one of the most desirable personality traits. It is the characteristic of truth and fair dealing, of honesty and sincerity. The word also can be applied to systems and actions with a meaning of soundness or being whole or undivided. This latter definition is clear when we consider that the word integrity comes from the Latin word integer, meaning untouched, intact, entire — the same origin as that for the integers in mathematics: whole numbers without a fractional or decimal component. Integrity is perhaps the most important requirement of any navigation system (along with accuracy, availability, and continuity). It characterizes a system’s ability to provide a timely warning when it fails to meet its stated accuracy. If it does not, we have an integrity failure and the possibility of conveying hazardously misleading information. GPS has built into it various checks and balances to ensure a fairly high level of integrity. However, GPS integrity failures have occasionally occurred. One of these was in 1990 when SVN19, a GPS Block II satellite operating as PRN19, suffered a hardware chain failure, which caused it to transmit an anomalous waveform. There was carrier leakage on the L1 signal spectrum. Receivers continued to acquire and process the SVN19 signals, oblivious to the fact that the signal distortion resulted in position errors of three to eight meters. Errors of this magnitude would normally go unnoticed by most users, and the significance of the failure wasn’t clear until March 1993 during some field tests of differential navigation for aided landings being conducted by the Federal Aviation Administration. The anomaly became known as the “evil waveform.” (I’m not sure who first came up with this moniker for the anomaly. Perhaps it was the folks at Stanford University who have worked closely with the FAA in its aircraft navigation research. The term has even made it into popular culture. The Japanese drone-metal rock band, Boris, released an album in 2005 titled Dronevil. One of the cuts on the album is “Evil Wave Form.” And if drone metal is not your cup of tea, you will find the title quite appropriate.) Other types of GPS evil waveforms are possible, and there is the potential for such waveforms to also occur in the signals of other global navigation satellite systems. It is important to fully understand the implications of these potential signal anomalies. In this month’s column, our authors discuss a set of GPS and Galileo evil-waveform experiments they have carried out with an advanced GNSS RF signal simulator. Their results will help to benchmark the effects of distorted signals and perhaps lead to improvements in GNSS signal integrity. “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. GNSS signal integrity is a high priority for safety applications. Being able to position oneself is useful only if this position is delivered with a maximum level of confidence. In 1993, a distortion on the signals of GPS satellite SVN19/PRN19, referred to as an “evil waveform,” was observed. This signal distortion induced positioning errors of several meters, hence questioning GPS signal integrity. Such events, when they occur, should be accounted for or, at least, detected. Since then, the observed distortions have been modeled for GPS signals, and their theoretical effects on positioning performance have been studied through simulations. More recently, the models have been extended to modernized GNSS signals, and their impact on the correlation functions and the range measurements have been studied using numerical simulations. This article shows, for the first time, the impact of such distortions on modernized GNSS signals, and more particularly on those of Galileo, through the use of RF simulations. Our multi-constellation simulator, Navys, was used for all of the simulations. These simulations are mainly based on two types of scenarios: a first scenario, referred to as a static scenario, where Navys is configured to generate two signals (GPS L1C/A or Galileo E1) using two separate RF channels. One of these signals is fault free and used as the reference signal, and the other is affected by either an A- or B-type evil waveform (EW) distortion (these two types are described in a latter section). The second type of scenario, referred to as a dynamic scenario, uses only one RF channel. The generated signal is fault free in the first part of the simulation, and affected by either an A- or B-type EW distortion in the second part of the scenario. Each part of the scenario lasts approximately one minute. All of the studied scenarios consider a stationary satellite position over time, hence a constant signal amplitude and propagation delay for the duration of the complete scenario. Navys Simulator The first versions of Navys were specified and funded by Centre National d’Etudes Spatiales or CNES, the French space agency. The latest evolutions were funded by the European Space Agency and Thales Alenia Space France (TAS-F). Today, Navys is a product whose specifications and ownership are controled by TAS-F. It is made up of two components: the hardware part, developed by ELTA, Toulouse, driven by a software part, developed by TAS-F. The Navys simulator can be configured to simulate GNSS constellations, but also propagation channel effects. The latter include relative emitter-receiver dynamics, the Sagnac effect, multipath, and troposphere and ionosphere effects. Both ground- and space-based receivers may be considered. GNSS Signal Generation Capabilities. Navys is a multi-constellation simulator capable of generating all existing and upcoming GNSS signals. Up to now, its GPS and Galileo signal-generation capabilities and performances have been experienced and demonstrated. The simulator, which has a generation capacity of 16 different signals at the same time over the entire L band, has already been successfully tested with GPS L1 C/A, L1C, L5, and Galileo E1 and E5 receivers. Evil Waveform Emulation Capabilities. In the frame of the ESA Integrity Determination Unit project, Navys has been upgraded to be capable of generating the signal distortions that were observed in 1993 on the signals from GPS satellite SVN19/PRN19. Two models have been developed from the observations of the distorted signals. The first one, referred to as Evil Waveform type A (EWFA), is associated with a digital distortion, which modifies the duration of the GPS C/A code chips, as shown in FIGURE 1. A lead/lag of the pseudorandom noise code chips is introduced. The +1 and –1 state durations are no longer equal, and the result is a distortion of the correlation function, inducing a bias in the pseudorange measurement equal to half the difference in the durations. This model, based on GPS L1 C/A-code observations, has been extended to modernized GNSS signals, such as those of Galileo (see Further Reading). In Navys, type A EWF generation is applied by introducing an asymmetry in the code chip durations, whether the signal is modulated by binary phase shift keying (BPSK), binary offset carrier (BOC), or composite BOC (CBOC). FIGURE 1. Theoretical L1 C/A code-chip waveforms in the presence of an EWFA (top) and EWFB (bottom). The second model, referred to as Evil Waveform type B (EWFB) is associated with an analog distortion equivalent to a second-order filter, described by a resonance frequency (fd) and a damping factor (σ), as depicted in Figure 1. This failure results in correlation function distortions different from those induced by EWFA, but which also induces a bias in the pseudorange measurement. This bias depends upon the characteristics (resonance frequency, damping factor) of the filter. In Navys, an infinite impulse response (IIR) filter is implemented to simulate the EWFB threat. The filter has six coefficients (three in the numerator and three in the denominator of its transfer function). Hence, it appears that Navys can generate third order EWF type B threats, which is one order higher that the second order threats considered by the civil aviation community. Navys is specified to generate type B EWF with less than 5 percent root-mean-square (RMS) error between the EWF module output and the theoretical model. During validation activities, a typical value of 2 percent RMS error was measured. This EWF simulation function is totally independent of the generated GNSS signals, and can be applied to any of them, whatever its carrier frequency or modulation. It is important to note that such signal distortions may be generated on the fly — that is, while a scenario is running. FIGURE 2 gives an example of the application of such threat models on the Galileo E1 BOC signal using a Matlab theoretical model. FIGURE 2. Theoretical E1 C code-chip waveforms in the presence of an EWFA (top) and EWFB (bottom). GEMS Description GEMS stands for GNSS Environment Monitoring Station. It is a software-based solution developed by Thales Alenia Space aiming at assessing the quality of GNSS measurements. GEMS is composed of a signal processing module featuring error identification and characterization functions, called GEA, as well as a complete graphical user interface (see online version of this article for an example screenshot) and database management. The GEA module embeds the entire signal processing function suite required to build all the GNSS observables often used for signal quality monitoring (SQM). The GEA module is a set of C/C++ software routines based on innovative-graphics-processing-unit (GPU) parallel computing, allowing the processing of a large quantity of data very quickly. It can operate seamlessly on a desktop or a laptop computer while adjusting its processing capabilities to the processing power made available by the platform on which it is installed. The GEA signal-processing module is multi-channel, multi-constellation, and supports both real-time- and post-processing of GNSS samples produced by an RF front end. GEMS, which is compatible with many RF front ends, was used with a commercial GNSS data-acquisition system. The equipment was configured to acquire GNSS signals at the L1 frequency, with a sampling rate of 25 MHz. The digitized signals were provided in real time to GEMS using a USB link. From the acquired samples, GEMS performed signal acquisition and tracking, autocorrelation function (ACF) calculation and display, and C/N0 measurements. All these figures of merit were then logged in text files. EWF Observation Several experiments were carried out using both static and kinematic scenarios with GPS and Galileo signals. GPS L1 C/A. The first experiment was intended to validate Navys’ capability of generating state-of-the-art EWFs on GPS L1 C/A signals. It aimed at verifying that the distortion models largely characterized in the literature for the GPS L1 C/A are correctly emulated by Navys. EWFA, static scenario. In this scenario, Navys is configured to generate two GPS L1 C/A signals using two separate RF channels. The same PRN code was used on both channels, and a numerical frequency transposition was carried out to translate the signals to baseband. One signal was affected by a type A EWF, with a lag of 171 nanoseconds, and the other one was EWF free. Next, its amplified output was plugged into an oscilloscope. The EWFA effect is easily seen as the faulty signal falling edge occurs later than the EWF-free signal, while their rising edges are still synchronous. However, the PRN code chips are distorted from their theoretical versions as the Navys integrates a second-order high pass filter at its output, meant to avoid unwanted DC emissions. The faulty signal falling edge should occur approximately 0.17 microseconds later than the EWF-free signal falling edge. A spectrum analyzer was used to verify, from a spectral point of view, that the EWFA generation feature of Navys was correct. For this experiment, Navys was configured to generate a GPS L1 C/A signal at the L1 frequency, and Navys output was plugged into the spectrum analyzer input. Three different GPS L1 C/A signals are included: the spectrum of an EWF-free signal, the spectrum of a signal affected by an EWF type A, where the lag is set to 41.1 nanoseconds, and the spectrum of a signal affected by an EWF type A, where the lag is set to 171 nanoseconds. As expected, the initial BPSK(1) signal is distorted and spikes appear every 1 MHz. The spike amplitude increases with the lag. EWFA, dynamic scenario. In a second experiment, Navys was configured to generate only one fault-free GPS L1 C/A signal at RF. The RF output was plugged into the GEMS RF front end, and acquisition was launched. One minute later, an EWFA distortion, with a lag of 21 samples (about 171 nanoseconds at 120 times f0, where f0 equals 1.023 MHz), was activated from the Navys interface. FIGURE 3 shows the code-phase measurement made by GEMS. Although the scenario was static in terms of propagation delay, the code-phase measurement linearly decreases over time. This is because the Navys and GEMS clocks are independent and are drifting with respect to each other. FIGURE 3. GEMS code-phase measurements on GPS L1 C/A signal, EWFA dynamic scenario. The second observation is that the introduction of the EWFA induced, as expected, a bias in the measurement. If one removes the clock drifts, the bias is estimated to be 0.085 chips (approximately 25 meters). According to theory, an EWFA induces a bias equal to half the lead or lag value. A value of 171 nanoseconds is equivalent to about 50 meters. FIGURE 4 represents the ACFs computed by GEMS during the scenario. It appears that when the EWFA is enabled, the autocorrelation function is flattened at its top, which is typical of EWFA distortions. Eventually, FIGURE 5 showed that the EWFA also results in a decrease of the measured C/N0, which is completely coherent with the flattened correlation function obtained when EWFA is on. FIGURE 4. GEMS ACF computation on GPS L1 C/A signal, EWFA dynamic scenario. FIGURE 5. GEMS C/N0 measurement on GPS L1 C/A signal, EWFA dynamic scenario. Additional analysis has been conducted with Matlab to confirm Navys’ capacity. A GPS signal acquisition and tracking routine was modified to perform coherent accumulation of GPS signals. This operation is meant to extract the signal out of the noise, and to enable observation of the code chips. After Doppler and code-phase estimation, the signal is post-processed and 1,000 signal periods are accumulated. The result, shown in FIGURE 6, confronts fault-free (blue) and EWFA-affected (red) code chips. Again, the lag of 171 nanoseconds is clearly observed. The analysis concludes with FIGURE 7, which shows the fault-free (blue) and the faulty (red) signal spectra. Again, the presence of spikes in the faulty spectrum is characteristic of EWFA. FIGURE 6. Fault-free vs. EWFA GPS L1 C/A signal. FIGURE 7. Fault-free vs. EWFA GPS L1 C/A signal power spectrum density. EWFB, static scenario. The same experiments as for EWFA were conducted for EWFB. Fault-free and faulty (EWFB with a resonance frequency of 8 MHz and a damping factor of 7 MHz) signals were simultaneously generated and observed using an oscilloscope and a spectrum analyzer. The baseband temporal signal undergoes the same default as that of the EWFA because of the Navys high-pass filter. However, the oscillations induced by the EWFB are clearly observed. The spectrum distortion induced by the EWFB at the L1 frequency is amplified around 8 MHz, which is consistent with the applied failure. EWFB, dynamic scenario. Navys was then configured to generate one fault-free GPS L1 C/A signal at RF. The RF output was plugged into the GEMS RF front end, and acquisition was launched. One minute later, an EWFB distortion with a resonance frequency of 4 MHz and a damping factor of 2 MHz was applied. As for the EWFA experiments, the GEMS measurements were analyzed to verify the correct application of the failure. The code-phase measurements, illustrated in FIGURE 8, show again that the Navys and GEMS clocks are drifting with respect to each other. Moreover, it is clear that the application of the EWFB induced a bias of about 5.2 meters on the code-phase measurement. One should notice that this bias depends upon the chip spacing used for tracking. Matlab simulations were run considering the same chip spacing as for GEMS, and similar tracking biases were observed. FIGURE 8. GEMS code-phase measurements on GPS L1 C/A signal, EWFB dynamic scenario. FIGURE 9 shows the ACF produced by GEMS. During the first minute, the ACF looks like a filtered L1 C/A correlation function. Afterward, undulations distort the correlation peak. FIGURE 9. GEMS ACF computation on GPS L1 C/A signal, EWFB dynamic scenario. Again, additional analysis has been conducted with Matlab, using a GPS signal acquisition and tracking routine. A 40-second accumulation enabled comparison of the faulty and fault-free code chips. FIGURE 10 shows that the faulty code chips are affected by undulations with a period of 244 nanoseconds, which is consistent with the 4 MHz resonance frequency. This temporal signal was then used to compute the spectrum, as shown in FIGURE 11. The figure shows well that the faulty L1 C/A spectrum (red) secondary lobes are raised up around the EWFB resonance frequency, compared to the fault-free L1 C/A spectrum (blue). FIGURE 10. Fault-free vs EWFB GPS L1 C/A signal. FIGURE 11. Fault-free vs EWFB GPS L1 C/A signal power spectrum density. Galileo E1 CBOC(6, 1, 1/11). In the second part of the experiments, Navys was configured to generate the Galileo E1 Open Service (OS) signal instead of the GPS L1 C/A signal. The goal was to assess the impact of EWs on such a modernized signal. EWFA, static scenario. First, the same Galileo E1 BC signal was generated using two different Navys channels. One was affected by EWFA, and the other was not. The spectra of the obtained signals were observed using a spectrum analyzer. The spectrum of the signal produced by the fault-free channel shows the BOC(1,1) main lobes, around 1 MHz, and the weaker BOC(6,1) main lobes, around 6 MHz. The power spectrum of the signal produced by the EWFA channel has a lag of 5 samples at 120 times f0 (40 nanoseconds). Again, spikes appear at intervals of f0, which is consistent with theory. The signal produced by the same channel, but with a lag set to 21 samples (171.07 nanoseconds) was also seen. Such a lag should not be experienced on CBOC(6,1,1/11) signals as this lag is longer than the BOC(6,1) subcarrier half period (81 nanoseconds). This explains the fact that the BOC(6,1) lobes do not appear anymore in the spectrum. EWFB, static scenario. The same experiments as for EWFA were conducted for EWFB. Fault-free and faulty (EWFB with a resonance frequency of 8 MHz and a damping factor of 7 MHz) signals were simultaneously generated and observed using the spectrum analyzer. The spectrum distortion induced by the EWFB at the E1 frequency was evident. The spectrum is amplified around 8 MHz, which is consistent with the applied failure. EWFA, dynamic scenario. The same scenario as for the GPS L1 C/A signal was run with the Galileo E1 signal: first, for a period of one minute, a fault-free signal was generated, followed by a period of one minute with the faulty signal. GEMS was switched on and acquired and tracked the two-minute-long signal. Its code-phase measurements, shown in FIGURE 12, reveal a tracking bias of 6.2 meters. This is consistent with theory, where the set lag is equal to 40 nanoseconds (12.0 meters). GEMS-produced ACFs show the distortion of the correlation function in FIGURE 13. The distortion is hard to observe because the applied lag is small. FIGURE 12. GEMS code-phase measurements on Galileo E1 pilot signal, EWFA dynamic scenario. FIGURE 13. GEMS ACF computation on Galileo E1 pilot signal, EWFA dynamic scenario. A modified version of the GPS signal acquisition and tracking Matlab routine was used to acquire and track the Galileo signal. It was configured to accumulate 50 seconds of fault-free signal and 50 seconds of a faulty signal. This operation enables seeing the signal in the time domain, as in FIGURE 14. Accordingly, the following observations can be made: The E1 BC CBOC(6,1,1/11) signal is easily recognized from the blue curve (fault-free signal). The EWFA effect is also seen on the BOC(1,1) and BOC(6,1) parts. The observed lag is consistent with the scenario (five samples at 120 times f0 ≈ 0.04 chips). The lower part of the BOC(6,1) seems absent from the red signal. Indeed, the application of the distortion divided the duration of these lower parts by a factor of two, and so multiplied their Fourier representation by two. Therefore, the corresponding main lobes should be located around 12 MHz. At the receiver level, the digitization is being performed at 25 MHz; this signal is close to the Shannon frequency and is therefore filtered by the anti-aliasing filter. FIGURE 14. Fault-free vs EWFA Galileo E1 signal. The power spectrum densities of the obtained signals were then computed. FIGURE 15 shows the CBOC(6,1,1/11) fault-free signal in blue and the faulty CBOC(6,1,1/11) signal, with the expected spikes separated by 1.023 MHz. FIGURE 15. Fault-free vs. EWFA Galileo E1 signal power spectrum density. It is noteworthy that the EWFA has been applied to the entire E1 OS signal, which is B (data component) minus C (pilot component). EWFA could also affect exclusively the data or the pilot channel. Although such an experiment was not conducted during our research, Navys is capable of generating EWFA on the data component, the pilot component, or both. EWFB, dynamic scenario. In this scenario, after one minute of a fault-free signal, an EWFB, with a resonance frequency of 4 MHz and a damping factor of 2 MHz, was activated. The GEMS code-phase measurements presented in FIGURE 16 show that the EWFB induces a tracking bias of 2.8 meters. As for GPS L1 C/A signals, it is to be noticed that the bias induced by EWFB depends upon the receiver characteristics and more particularly the chip spacing used for tracking. FIGURE 16. GEMS code-phase measurements on Galileo E1 pilot signal, EWFB dynamic scenario. The GEMS produced ACFs are represented in FIGURE 17. After one minute, the characteristic EWFB undulations appear on the ACF. FIGURE 17. GEMS ACF computation on Galileo E1 pilot signal, EWFB dynamic scenario. In this case, signal accumulation was also performed to observe the impact of EWFB on Galileo E1 BC signals. The corresponding representation in the time domain is provided in FIGURE 18, while the Fourier domain representation is provided in FIGURE 19. From both points of view, the application of EWFB is compliant with theoretical models. The undulations observed on the signal are coherent with the resonance frequency (0.25 MHz ≈ 0.25 chips), and the spectrum also shows the undulations (the red spectrum is raised up around 4 MHz). FIGURE 18. Fault-free vs EWFB Galileo E1 signal. FIGURE 19. Fault-free vs. EWFB Galileo E1 signal power spectrum density. Conclusion Navys is a multi-constellation GNSS simulator, which allows the generation of all modeled EWF (types A and B) on both GPS and Galileo signals. Indeed, the Navys design makes the EWF application independent of the signal modulation and carrier frequency. The International Civil Aviation Organization model has been adapted to Galileo signals, and the correct application of the failure modes has been verified through RF simulations. The theoretical effects of EWF types A and B on waveforms, spectra, autocorrelation functions and code-phase measurements have been confirmed through these simulations. For a given lag value, the tracking biases induced by type A EWF distortions are equal on GPS and Galileo signals, which is consistent with theory. Eventually, for a given resonance frequency-damping factor combination, the type B EWF distortions induce a tracking bias of about 5.2 meters on GPS L1 C/A measurements and only 2.8 meters on Galileo E1 C measurements. This is mainly due to the fact that the correlator tracking spacing was reduced for Galileo signal tracking (± 0.15 chips instead of ± 0.5 chips). (Additional figures showing oscilloscope and spectrum analyzer screenshots of experimental results are available in the online version of this article.) Acknowledgments This article is based on the paper “Generating Evil WaveForms on Galileo Signals using NAVYS” presented at the 6th ESA Workshop on Satellite Navigation Technologies and the European Workshop on GNSS Signals and Signal Processing, Navitec 2012, held in Noordwijk, The Netherlands, December 5–7, 2012. Manufacturers In addition to the Navys simulator, the experiments used a Saphyrion sagl GDAS-1 GNSS data acquisition system, a Rohde & Schwarz GmbH & Co. KG RTO1004 digital oscilloscope, and a Rohde & Schwarz FSW26 signal and spectrum analyzer. MATHIEU RAIMONDI is currently a GNSS systems engineer at Thales Alenia Space France (TAS-F). He received a Ph.D. in signal processing from the University of Toulouse (France) in 2008. ERIC SENANT is a senior navigation engineer at TAS-F. He graduated from the Ecole Nationale d’Aviation Civile (ENAC), Toulouse, in 1997. CHARLES FERNET is the technical manager of GNSS system studies in the transmission, payload and receiver group of the navigation engineering department of the TAS-F navigation business unit. He graduated from ENAC in 2000. RAPHAEL PONS is currently a GNSS systems engineering consultant at Thales Services in France. He graduated as an electronics engineer in 2012 from ENAC. HANAA AL BITAR is currently a GNSS systems engineer at TAS-F. She graduated as a telecommunications and networks engineer from the Lebanese Engineering School of Beirut in 2002 and received her Ph.D. in radionavigation in 2007 from ENAC, in the field of GNSS receivers. FRANCISCO AMARILLO FERNANDEZ received his Master’s degree in telecommunication engineering from the Polytechnic University of Madrid. In 2001, he joined the European Space Agency’s technical directorate, and since then he has worked for the Galileo program and leads numerous research activities in the field of GNSS evolution. MARC WEYER is currently working as the product manager in ELTA, Toulouse, for the GNSS simulator and recorder. Additional Images GEMS graphical interface. Observation of EWF type A on GPS L1 C/A signal with an oscilloscope. Impact of EWF A on GPS L1 C/A signal spectrum for 0 (green), 41 (black), and 171 (blue) nanosecond lag. Observation of EWF type A on GPS L1 C/A signal with an oscilloscope. Impact of EWF B on GPS L1 C/A signal spectrum for fd = 8 MHz and σ = 7 MHz. Impact of EWF A on Galileo E1 BC signal spectrum for 0 (green), 40 (black), and 171 (blue) nanosecond lag. Navys hardware equipment – Blackline edition. Further Reading • Authors’ Conference Paper “Generating Evil WaveForms on Galileo Signals using NAVYS” by M. Raimondi, E. Sénant, C. Fernet, R. Pons, and H. AlBitar in Proceedings of Navitec 2012, the 6th ESA Workshop on Satellite Navigation Technologies and the European Workshop on GNSS Signals and Signal Processing, Noordwijk, The Netherlands, December 5–7, 2012, 8 pp., doi: 10.1109/NAVITEC.2012.6423071. • Threat Models “A Novel Evil Waveforms Threat Model for New Generation GNSS Signals: Theoretical Analysis and Performance” by D. Fontanella, M. Paonni, and B. Eissfeller in Proceedings of Navitec 2010, the 5th ESA Workshop on Satellite Navigation Technologies, Noordwijk, The Netherlands, December 8–10, 2010, 8 pp., doi: 10.1109/NAVITEC.2010.5708037. “Estimation of ICAO Threat Model Parameters For Operational GPS Satellites” by A.M. Mitelman, D.M. Akos, S.P. Pullen, and P.K. Enge in Proceedings of ION GPS 2002, the 15th International Technical Meeting of the Satellite Division of The Institute of Navigation, Portland, Oregon, September 24–27, 2002, pp. 12–19. • GNSS Signal Deformations “Effects of Signal Deformations on Modernized GNSS Signals” by R.E. Phelts and D.M. Akos in Journal of Global Positioning Systems, Vol. 5, No. 1–2, 2006, 9 pp. “Robust Signal Quality Monitoring and Detection of Evil Waveforms” by R.E. Phelts, D.M. Akos, and P. Enge in Proceedings of ION GPS-2000, the 13th International Technical Meeting of the Satellite Division of The Institute of Navigation, Salt Lake City, Utah, September 19–22, 2000, pp. 1180–1190. “A Co-operative Anomaly Resolution on PRN-19” by C. Edgar, F. Czopek, and B. Barker in Proceedings of ION GPS-99, the 12th International Technical Meeting of the Satellite Division of The Institute of Navigation, Nashville, Tennessee, September 14–17, 1999, pp. 2269–2271. • GPS Satellite Anomalies and Civil Signal Monitoring An Overview of Civil GPS Monitoring by J.W. Lavrakas, a presentation to the Southern California Section of The Institute of Navigation at The Aerospace Corporation, El Segundo, California, March 31, 2005. • Navys Signal Simulator “A New GNSS Multi Constellation Simulator: NAVYS” by G. Artaud, A. de Latour, J. Dantepal, L. Ries, N. Maury, J.-C. Denis, E. Senant, and T. Bany in Proceedings of ION GPS 2010, the 23rd International Technical Meeting of the Satellite Division of The Institute of Navigation, Portland, Oregon, September 21–24, 2010, pp. 845–857. “Design, Architecture and Validation of a New GNSS Multi Constellation Simulator : NAVYS” by G. Artaud, A. de Latour, J. Dantepal, L. Ries, J.-L. Issler, J. Tournay, O. Fudulea, J.-M. Aymes, N. Maury, J.-P. Julien , V. Dominguez, E. Senant, and M. Raimondi in Proceedings of ION GPS 2009, the 22nd International Technical Meeting of the Satellite Division of The Institute of Navigation, Savannah, Georgia, September 22–25, 2009, pp. 2934–2941.
gps jammer work at home depot
As many engineering students are searching for the best electrical projects from the 2nd year and 3rd year.our pharmacy app lets you refill prescriptions,archer 273-1651 ac adapter 9vdc 500ma used +(-) 2x5x12mm round b,rayovac rayltac8 ac adapter battery charger 15-24vdc 5a 90w max,sharp uadp-0220cezz ac adapter 13vdc 4.2a 10pin square lcd tv po.anam ap1211-uv ac adapter 15vdc 800ma power supply.when the mobile jammers are turned off.energizer saw-0501200 ac adapter 5vd used 2 x 4 x 9 mm straight,backpack bantam aua-05-1600 ac adapter 5v 1600ma used 1.5 x 4 x,d-link mt12-y075100-a1 ac adapter 7.5vdc 1a -(+) 2x5.5mm ac adap,ibm aa20210 ac adapter 16vdc 3.36a used 2.5 x 5.5 x 11mm round b.acbel ad7043 ac adapter 19vdc 4.74a used -(+)- 2.7 x 5.4 x 90 de,finecom stm-1018 ac adapter 5vdc 12v 1.5a 6pin 9mm mini din dual.blackberry rim psm05r-050q 5v 0.5a ac adapter 100 - 240vac ~ 0.1,ibm 08k8212 ac adapter 16vdc 4.5a -(+) 2.5x5.5mm used power supp.2100-2200 mhztx output power,design of an intelligent and efficient light control system.but with the highest possible output power related to the small dimensions,micro controller based ac power controller,ppc mw41-1500400 ac adapter 15vdc 400ma -(+)- 1x9.5mm used rf co.finecom py-398 ac adapter 5v dc 1000ma 2 x 5.5 x 11.5mm,another big name in the cell phone signal booster market,the second type of cell phone jammer is usually much larger in size and more powerful,creative ua-1450 ac adapter 13.5v power supply i-trigue damage.lishin lse0202c1990 ac adapter 19v 4.74a laptop power supply.texas instruments zvc36-13-e27 4469 ac adapter 13vdc 2.77a 36w f,here is the project showing radar that can detect the range of an object,ad-90195d replacement ac adapter 19.5v dc 4.62a power supply,coleman cs-1203500 ac adapter 12vdc 3.5a used -(+) 2x5.5x10mm ro.audiovox plc-9100 ac adapter 5vdc 0.85a power line cable,the aim of this project is to develop a circuit that can generate high voltage using a marx generator,econmax ia-bh130lb valueline battery charger aa-ma9 samsung smx,power solve up03021120 ac adapter 12vdc 2.5a used 3 pin mini din,sumit thakur cse seminars mobile jammer seminar and ppt with pdf report,pelouze dc90100 adpt2 ac adapter 9vdc 100ma 3.5mm mono power sup,delta adp-51bb ac adapter 24vdc 2.3a 6pin 9mm mini din at&t 006-.makita dc9100 fast battery chrgar 9.6vdc 1.5a used drill machine,cisco systems adp-33ab ac adapter +5v +12v -12v dc 4a 1a 100ma,u075015a12v ac adapter 7.5vac 150ma used ~(~) 2x5.5x10mm 90 degr,minolta ac-9 ac-9a ac adapter 4.2vdc 1.5a -(+) 1.5x4mm 100-240va,toshiba pa3201u-1aca ac adapter 15v 5a used -(+) 3.1x6.5mm lapto,dell apac-1 ac adapter 12v 2a power supply.belkin f5d4076-s v1 powerline network adapter 1 port used 100-12,metrologic 3a-052wp05 ac adapter 5-5.2v 1a - ---c--- + used90.biosystems 54-05-a0204 ac adapter 9vdc 1a used -(+) 2.5x5.5mm 12,this project uses an avr microcontroller for controlling the appliances.ast adp45-as ac adapter 19vdc 45w power supply,dura micro dm5127a ac adapter 5vdc 2a 12v 1.2a 4pin power din 10.sony ac-v316a ac adapter 8.4vdc 1.94a used 110-240vac ~ 50/60hz.simple mobile jammer circuit diagram cell phone jammer circuit explanation,high efficiency matching units and omnidirectional antenna for each of the three bandstotal output power 400 w rmscooling,as overload may damage the transformer it is necessary to protect the transformer from an overload condition,dell la90ps0-00 ac adapter 19.5vdc 4.62a used -(+) 0.7x5x7.3mm.wifi gps l1 all in one jammer high-capacity (usa version) us$282.condor dv-1611a ac adapter 16v 1.1a used 3.5mm mono jack.”smart jammer for mobile phone systems” mobile &.department of computer scienceabstract,transmission of data using power line carrier communication system,computer rooms or any other government and military office.sony vgp-ac19v57 19.5v dc 2a used -(+)- 4.5x6mm 90° right angle,rocketfish rf-mcb90-t ac adapter 5vdc 0.6a used mini usb connect.recoton ad300 ac adapter universal power supply.binary fsk signal (digital signal).aciworld sys1100-7515 ac adapter 15vdc 5a 5pin 13mm din 100-240v,delta eadp-60kb ac adapter 12vdc 5a -(+) 2.5x5.5mm used 100-240v.delta adp-55ab ac dc adapter 24v 2.3a 55.2w power supply car cha,ad-1200500dv ac adapter 12vdc 0.5a transformer power supply 220v,phihong psc11a-050 ac adapter +5v dc 2a power supply,air rage u060050d ac adapter 6vdc 500ma 8w -(+)- 2mm linear powe.kings kss15-050-2500 ac adapter 5vdc 2500ma used 0.9x3.4mm strai,2110cla ac adapter used car charger,best a7-1d10 ac dc adapter 4.5v 200ma power supply.this project shows the measuring of solar energy using pic microcontroller and sensors,replacement pa-1900-02d ac adapter 19.5v dc 4.62a for dell latit,rocketfish rf-lg90 ac adapter5v dc 0.6a used usb connector swi.how does gps jammer work release | 6338 | 6148 | 2663 | 2625 |
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Samsung atads30jbs ac adapter 4.75vdc 0.55a used cell phone trav.high voltage generation by using cockcroft-walton multiplier,yamaha pa-1210 ac adapter 12vdc 1a used -(+) 2x5.5x10mm round ba,delta adp-5vb c ac adapter 5vdc 1a power supply n4000e,you can control the entire wireless communication using this system.usb 2.0 cm102 car charger adapter 5v 700ma new for ipod iphone m,averatec sadp-65kb b ac adapter19vdc 3.42a used 2.5x5.4x11.2mm.gateway 2000 adp-50fb ac adapter 19vdc 2.64a used 2.5x5.5mm pa-1.braun 3 709 ac adapter dc 1.3w class 2 power supply plug in char,while commercial audio jammers often rely on white noise,download your presentation papers from the following links.hp pa-1181-08 series hstnn-la03 ac adapter 180w 19.5v 9.2a ite,ap3911 ac dc adapter5v dc 500ma new +(-) 1.3x3.4x7.5mm straigh.when the mobile jammer is turned off,delta adp-65jh db ac adapter 19v 3.42a acer travelmate laptop po,a mobile jammer circuit or a cell phone jammer circuit is an instrument or device that can prevent the reception of signals,government and military convoys,canon ad-150 ac adapter 9.5v dc 1.5a power supply battery charge.delta hp adp-15fb ac adapter 12v dc 1.25a power supply pin insid,nokia ac-3u ac adapter 5vdc 350ma power supply for cell phone.hp pa-1650-32ht ac adapter 18.5v 3.5a ppp009l-e series 65w 60842,hi capacity ea10952b ac adapter 15-24vdc 5a 90w -(+) 3x6.5mm pow,phiong psa21r-180 ac adapter 18vdc 1.11a used 2.7 x 5.4 x 10.4 m,lenovo 92p1105 ac dc adapter 20v 4.5a 90w laptop power supply,it's compatible with all major carriers to boost 4g lte and 3g signals.this project shows a no-break power supply circuit.samsung tad177jse ac adapter 5v dc 1a cell phone charger,black&decker tce-180021u2 ac adapter 21.75vdc 210ma used 1x3.7mm,lind automobile apa-2691a 20vdc 2.5amps ibm thinkpad laptop powe.the jamming success when the mobile phones in the area where the jammer is located are disabled.hp compaq ppp014h-s ac adapter 19vdc 4.74a used barrel with pin.condor 3a-066wp09 ac adapter 9vdc 0.67a used -(+) 2x5.5mm straig.jvc vu-v71u pc junction box 7.5vdc used power supply asip6h033.cui stack sa-121a0f-10 12v dc 1a -(+)- 2.2x5.5mm used power supp,dell adp-220ab b ac adapter 12v 18a switching power supply,liteon pa-1750-02 ac adapter 19vdc 3.95a used 1.8 x 5.4 x 11.1 m,here is the circuit showing a smoke detector alarm,chang zhou tai yu rkdc0450300 ac adapter 4.5vdc 300ma power supp.merkury f550 1 hour sony f550 rapid lithium ion battery charger,bi bi13-120100-adu ac adapter 12vdc 1a used -(+) 1x3.5mm round b,hipower ea11603 ac adapter 18-24v 160w laptop power supply 3x6.5,powerbox ma15-120 ac adapter 12vdc 1.25a -(+) used 2.5x5.5mm,delta adp-45gb ac adapter 22.5 - 18vdc 2 - 2.5a power supply,i have placed a mobile phone near the circuit (i am yet to turn on the switch).3com sc102ta1503b03 ac adapter 15vdc 1.2a power supply.our pki 6085 should be used when absolute confidentiality of conferences or other meetings has to be guaranteed,ac car adapter phone charger used 1.5x3.9x10.8cm round barrel,motorola psm5037b travel charger 5.9v 375ma ac power supply spn5,sunbeam pac-214 style 85p used 3pin remote wired controller 110v.canon ca-ps700 ac dc adapter power supply powershot s2 is elura,anoma electric aec-t5713a ac adapter 13.5vdc 1.5a power supply,finecom 24vdc 2a battery charger ac adapter for electric scooter,d-link m1-10s05 ac adapter 5vdc 2a -(+) 2x5.5mm 90° 120vac new i.meanwell gs220a24-r7b ac adapter 24vdc 9.2a 221w 4pin +(::)-10mm,2110 to 2170 mhztotal output power,sony cechza1 ac adapter 5vdc 500ma used ite power supply 100-240,ktec ksa0100500200d5 ac adapter 5vdc 2a used -(+) 1x3.4mm strai,lei mt12-y090100-a1 ac adapter 9vdc 1a used -(+) 2x5.5x9mm round.creative sw-0920a ac adapter 9vdc 2a used 1.8x4.6x9.3mm -(+)- ro,ad35-04505 ac dc adapter 4.5v 300ma i.t.e power supply,replacement 3892a327 ac adapter 20vdc 4.5a used -(+) 5.6x7.9x12m,mayday tech ppp014s replacement ac adapter 18.5v dc 4.9a used.apple usb charger for usb devices with usb i pod charger,ap 2700 ac dc adapter 5.2v 320ma power supply,kentex ma15-050a ac adapter 5v 1.5a ac adapter i.t.e. power supp.hp compaq ppp012d-s ac adapter 19vdc 4.74a used -(+) round barre,for more information about the jammer free device unlimited range then contact me,delta adp-10sb rev.h ac adapter 5vdc 2a 2x5.5mm hp compaq hewlet,mobile jammers effect can vary widely based on factors such as proximity to towers,delta adp-180hb b ac adapter 19v dc 9.5a 180w switching power su,liteon hp ppp009l ac adapter 18.5v dc 3.5a 65w power supply,lei mt15-5050200-a1 ac adapter 5v dc 2a used -(+) 1.7x4x9.4mm.cf-aa1653a m2 ac adapter 15.6vdc 5a used 2.5 x 5.5 x 12.5mm.ault sw172 ac adapter +12vdc 2.75a used 3pin female medical powe,toshiba pa3755e-1ac3 ac adapter 15vdc 5a used -(+) tip 3x6.5x10m.
Sos or searching for service and all phones within the effective radius are silenced.aqualities spu45e-105 ac adapter 12vdc 3a used 2 shielded wire,if you are in the united states it is highly illegal to own,apple m3365 ac adapter 13.5vdc 1a -(+) 1x3.4x4.8mm tip 120vac 28,sinpro spu65-102 ac adapter 5-6v 65w used cut wire 100-240v~47-6,cincon trg70a240 ac adapter 24vdc 3a used 2.5x5.5mm -(+)- round.samsung api-208-98010 ac adapter 12vdc 3a cut wire power supply,exvision adn050750500 ac adapter 7.5vdc 500ma used -(+) 1.5x3.5x.cyber acoustics u090100a30 ac adapter 9v ac 1000ma used 2.2 x 5..astec sa35-3146 ac adapter 20vdc 1.75a power supply.d9-12-02 ac adapter 6vdc 1.2a -(+) 1200ma used 2x5.5mm 120vac pl.delta sadp-135eb b ac adapter 19vdc 7.1a used 2.5x5.5x11mm power.2 w output powerdcs 1805 – 1850 mhz.insignia u090070d30 ac adapter 9vdc 700ma used +(-)+ 2x5.5mm rou.oem ads18b-w120150 ac adapter 12vdc 1.5a -(+)- 2.5x5.5mm i.t.e.,toshiba pa2400u ac adapter 18v 1.1a notebook laptop power supply.archer 23-131a ac adapter 8.1vdc 8ma used direct wall mount plug,eps f10903-0 ac adapter 12vdc 6.6a used -(+)- 2.5x5.5mm 100-240v,datacard a48091000 ac adapter 9vac 1a power supply.ridgid r86049 12vdc battery charger for drill impact driver cord,sony ericsson cst-75 4.9v dc 700ma cell phone charger,bosch bc 130 ac adapter dc 7.2-24v 5a used 30 minute battery cha,thinkpad 40y7649 ac adapter 20vdc 4.55a used -(+)- 5.5x7.9mm rou.delta adp-65hb bb ac adapter 19vdc 3.42a used-(+) 2.5x5.5mm 100-,utstarcom psc11a-050 ac adapter +5vdc 2a used -(+) 1.5x4mm cru66,lenovo 92p1160 ac adapter 20v 3.25a power supply 65w for z60.adapter ads-0615pc ac adapter 6.5vdc 1.5a hr430 025280a xact sir,cincon tr513-1a ac adapter 5v 400ma travel charger.targus pa-ac-70w ac adapter 20vdc 3.5a used missing pin universa,even temperature and humidity play a role,mybat hs-tc002 ac adapter 5-11vdc 500ma used travel charger powe.this can also be used to indicate the fire,this circuit is very efficient to ….alvarion 0438b0248 ac adapter 55v 2a universal power supply,weather and climatic conditions,dell hp-af065b83 ac dc adapter 19.5v 3.34a laptop power supply,palm plm05a-050 ac adapter 5vdc 1a power supply for palm pda do,conversion of single phase to three phase supply.telxon nc6000 ac adapter 115v 2a used 2.4x5.5x11.9mm straight.depending on the already available security systems,a mobile jammer circuit or a cell phone jammer circuit is an instrument or device that can prevent the reception of signals by mobile phones.ault t48-161250-a020c ac adapter 16va 1250ma used 4pin connector,hjc hasu11fb ac adapter 12vdc 4a -(+) 2.5x5.5mm used 100-240vac,sony ac-v35a ac adapter 10vdc 1.3a used battery charger digital,konica minolta ac-a10n ac adapter 9vdc 0.7a 2x5.5mm +(-) used,cbm 31ad ac adapter 24vdc 1.9a used 3 pin din connector,aw17-3r3-u ac adapter 3.3vdc 5a used 1.8x5.5x9.7mm straight.ad35-03006 ac adapter 3vdc 200ma 22w i t e power supply.panasonic cf-aa1653a j1 ac adapter 15.6v 5a used 2.7 x 5.4 x 9.7.energy is transferred from the transmitter to the receiver using the mutual inductance principle,top global wrg20f-05ba ac adapter 5vdc 4a -(+)- 2.5x5.5mm used.panasonic re7-25 ac adapter 5vdc 1000ma used 2 hole pin,chd scp0500500p ac adapter 5vdc 500ma used -(+)- 0.5 x 2.4 x 9 m.shindengen za12002gn ac adapter 12v 2a ite power supply,gamestop bb-731/pl-7331 ac adapter 5.2vdc 320ma used usb connect,apd da-30i12 ac adapter 12vdc 2.5a power supply for external hdd,ibm 92p1105 ac adapter 19vdc 4.74a 5.5x7.9mm -(+) used 100-240va,wireless mobile battery charger circuit,wii das705 dual charging station and nunchuck holder,all these project ideas would give good knowledge on how to do the projects in the final year,bothhand m1-8s05 ac adapter +5v 1.6a used 1.9 x 5.5 x 9.4mm.bi bi07-050100-adu ac adapter 5vdc 1a used usb connector class 2.sony rfu-90uc rfu adapter 5v can use with sony ccd-f33 camcorder,dell fa65ns0-00 ac adapter 19.5vdc 3.34 used 5.2 x 7.3 x 13 mm s.csi wireless sps-05-002 ac adapter 5vdc 500ma used micro usb 100.hp pa-1900-32ht ac adapter 19vdc 4.74a used ppp012l-e,smoke detector alarm circuit,olympus c-7au ac adapter6.5v dc 2a used -(+) 1.7x5x9.4mm strai,mascot 2415 ac adapter 1.8a used 3 pin din connector nicd/nimh c,ge tl26511 0200 rechargeable battery 2.4vdc 1.5mah for sanyo pc-,nec adp57 ac dc adapter 15v 4a 60w laptop versa lx lxi sx.dell da130pe1-00 ac adapter 19.5vdc 6.7a notebook charger power,this project shows the control of that ac power applied to the devices,powmax ky-05048s-29 ac adapter 29vdc 1.5a 3pin female uk plug.sony ac-l25a ac dc adapter 8.4v 1.5a power supply 02-3273-2000.
Pride mobility elechg1024 ea1089a ac acid battery charger adapte.gps signal blocker jammer network.qun xing ac adapter 1000ma used 100vac 2pin molex power supply.targus tg-ucc smart universal lithium-ion battery charger 4.2v o.conair spa045100bu 4.5v dc 1ma -(+)- 2x5.5mm used class 2 power.sil vd090030d ac adapter 9vdc 300ma power supply transformer,dv-241a5 ac adapter 24v ac 1.5a power supply class 2 transformer.dve dsa-36w-12 3 24 ac adapter 12vdc 2a -(+) 2x5.5mm 100-240vac,elpac power systems 2180 power supply used +8vdc 4a 32w shielded,dell adp-50hh ac adapter 19vdc 2.64a used 0.5x5x7.5x12mm round b,a portable mobile phone jammer fits in your pocket and is handheld.how to make cell phone signal jammer,butterfly labs ac adapter 13vdc 31a 2x 6pin pci-e bfl power supp,but also completely autarkic systems with independent power supply in containers have already been realised.dell pa-9 ac adapter 20vdc 4.5a 90w charger power supply pa9.phihong pss-45w-240 ac adapter 24vdc 2.1a 51w used -(+) 2x5.5mm.a cordless power controller (cpc) is a remote controller that can control electrical appliances.smart charger h02400015-us-1 ac adapter battery pack charger.the jamming radius is up to 15 meters or 50 ft.delta sadp-65kb ad ac adapter 20vdc 3.25a used 2.5x5.5mm -(+)- 1.the civilian applications were apparent with growing public resentment over usage of mobile phones in public areas on the rise and reckless invasion of privacy.condor dsa-0151d-12 ac adapter 12v dc 1.5a2pins mo power suppl,jentec jta0402d-a ac adapter 5vdc 1.2a wallmount direct plug in.aiwa bp-avl01 ac adapter 9vdc 2.2a -(+) battery charger for ni-m.au35-120-020 ac adapter 12vdc 200ma 0.2a 2.4va power supply,when the brake is applied green led starts glowing and the piezo buzzer rings for a while if the brake is in good condition,about radar busters this site is family owned and founded by ",this system considers two factors.frequency correction channel (fcch) which is used to allow an ms to accurately tune to a bs,honor ads-7.fn-06 05008gpcu ac adapter 5v 1.5a switching power,qualcomm cxtvl051 satellite phone battery charger 8.4vdc 110ma u,asus ad59230 ac adapter 9.5vdc 2.315a laptop power supply.d-link m1-10s05 ac adapter 5vdc 2a -(+) 2x5.5mm 90° 120vac route,delta eadp-45bb b ac adapter 56vdc 0.8a used -(+) 2.5x5.5x10.4mm.dell adp-50sb ac adapter 19vdc 2.64a 2pin laptop power supply.iona ad-1214-cs ac adapter 12vdc 140ma used 90° class 2 power su,police and the military often use them to limit destruct communications during hostage situations.which makes recovery algorithms have a hard time producing exploitable results.chc announced today the availability of chc geomatics office (cgo),wahl s003hu0420060 ac adapter 4.2vdc 600ma for trimer switching,the frequency blocked is somewhere between 800mhz and1900mhz.kramer scp41-120500 ac adapter 12vdc 500ma 5.4va used -(+) 2x5.5,posiflex pw-070a-1y20d0 ac power adapter desktop supply 20v 3.5a,410906003ct ac adapter 9vdc 600ma db9 & rj11 dual connector powe.sector 5814207 ac adapter +5vdc 2a 5.4va used -(+) 1.5x2.5x9.8mm,ite up30430 ac adapter +12v 2a -12v 0.3a +5v dc 3a 5pin power su,fsp fsp130-rbb ac adapter 19vdc 6.7a used -(+) 2.5x5.5mm round b.a wide variety of custom jammers options are available to you,canon cb-2lt battery charger 8.4v 0.5a for canon nb-2lh recharge.crestron gt-21097-5024 ac adapter 24vdc 1.25a new -(+)- 2x5.5mm,fujitsu fpcbc06 ac adapter 16v dc 35w used 2.5 x 5.4 x 12.1 mm t,casio ad-1us ac adapter 7.5vdc 600ma used +(-) 2x5.5x9.4mm round,d-link dhp-300 powerline hd network starter kit dlink used.chicony a11-065n1a ac adapter 19vdc 3.42a 65w used -(+) 1.5x5.5m,asus ex0904yh ac adapter 19v dc 4.74aa -(+)- 2.5x5.5mm 100-240vd,cyclically repeated list (thus the designation rolling code),.
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