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Cell phone jammer advantages - cellular telephone jammers noise

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Where Are We Now, and Where Are We Going? In this month’s column, we travel along the road of PPP development, examine its current status and look at where it might go in the near future By Sunil Bisnath, John Aggrey, Garrett Seepersad and Maninder Gill Innovation Insights with Richard Langley PPP. It’s one of the many acronyms (or initialisms, if you prefer) associated with the uses of global navigation satellite systems. It stands for precise point positioning. But what is that? Isn’t all GNSS positioning precise? Well, it’s a matter of degree. Take GPS, for example. The most common kind of GPS signal use, that implemented in vehicle “satnav” units; mobile phones; and hiking, golfing and fitness receivers, is to employ the L1 C/A-code pseudorange (code) measurements along with the broadcast satellite orbit and clock information to produce a point position. Officially, this is termed use of the GPS Standard Positioning Service (SPS). It is capable of meter-level positioning accuracy under the best conditions. There is a second official service based on L1 and L2 P-code measurements and broadcast data called the Precise Positioning Service (PPS). In principle, because the P-code provides somewhat higher precision code measurements and the use of dual-frequency data removes virtually all of the ionospheric effect, PPS is capable of slightly more precise (and accurate) positioning. But because the P-code is encrypted, PPS is only available to so-called authorized users. While meter-level positioning accuracy is sufficient for many, if not most applications, there are many uses of GNSS such as machine control, surveying and various scientific tasks, where accuracies better than 10 centimeters or even 1 centimeter are needed. Positioning accuracies at this level can’t be provided by pseudoranges alone and the use of carrier-phase measurements is required. Phase measurements are much more precise than code measurements although they are ambiguous and this ambiguity must be estimated and possibly resolved to the correct integer value. Traditionally, phase measurements (typically dual-frequency) made by a potentially moving user receiver have been combined with those from a reference receiver at a well-known position to produce very precise (and accurate) positions. If done in real time (through use of a radio link of some kind), this technique is referred to as real-time kinematic or RTK. A disadvantage of RTK positioning is that it requires reference station infrastructure including a radio link (such as mobile phone communications) for real-time results. Is there another way? Yes, and that’s PPP. PPP uses the more precise phase measurements (along with code measurements initially) on at least two carrier frequencies (typically) from the user’s receiver along with precise satellite orbit and clock data derived, by a supplier, from a global network. Precision, in this case, means a horizontal position accuracy of 10 centimeters or better. In this month’s column, we travel along the road of PPP development, examine its current status, and look at where it might go in the near future. In a 2009 GPS World “Innovation” article co-authored by Sunil Bisnath, the performance and technical limitations at the time of the precise point positioning (PPP) GPS measurement processing technique were described and a set of questions asked about the potential of PPP, especially with regard to the real-time kinematic (RTK) measurement processing technique. Since the 2009 article, we’ve seen a significant amount of research and development (R&D) activity in this area. Many scientific papers discuss PPP and making use of PPP — a search on Google Scholar for “GNSS PPP” delivers nearly 7,000 results, and for “GPS PPP” more than 15,000 results! Will PPP eventually overtake RTK as the de facto standard for precise (that is, few centimeter-level) positioning? Or, in light of PPP R&D developments, should we be asking different questions, such as will multiple precise GNSS positioning techniques compete or complement each other or perhaps result in a hybrid approach? In almost a decade, have we seen much in the way of positioning performance improvement, where “performance” can refer to positioning precision, accuracy, availability and integrity? Or, to some users, has the Achilles’ heel of PPP — the initial position solution convergence period — only been reduced from, for example, 20 minutes to 19 minutes? From such a perspective, all of this PPP research might not appear to have produced much tangible benefit. Advances have been made from this research and we will explore them here. Also, aside from many researchers working diligently on their own PPP software, there are now a number of well-established PPP-based commercial services — a number that has grown and been affected by the wave of GNSS industry consolidation over the decade. Consequently, there is much more to this story. This month’s article summarizes the current status of PPP performance and R&D, and discusses the potential future of the technique. In the first part of the article, we will present brief explanations of conventional dual-frequency PPP, recent research and implementations, and application of the evolved technique to low-cost hardware. We will conclude the article with a rather dangerous attempt at near-term extrapolation of potential upcoming developments and conceivable implications. Conventional PPP The concept of PPP is based on standard, single-receiver, single-frequency point positioning using pseudorange (code) measurements, but with the meter-level satellite broadcast orbit and clock information replaced with centimeter-level precise orbit and clock information, along with additional error modeling and (typically) dual-frequency code and phase measurement filtering. Back in 1995, researchers at Natural Resources Canada were able to reduce GPS horizontal positioning error from tens of meters to the few-meter level with code measurements and precise orbits and clocks in the presence of Selective Availability (SA). Subsequently, the Jet Propulsion Laboratory introduced PPP as a method to greatly reduce GPS measurement processing time for large static networks. When SA was turned off in May 2000 and GPS satellite clock estimates could then be more readily interpolated, the PPP technique became scientifically and commercially popular for certain precise applications. Unlike static relative positioning and RTK, conventional PPP does not make use of double-differencing, which is the mathematical differencing of simultaneous code and phase measurements from reference and remote receivers to greatly reduce or eliminate many error sources. Rather, PPP applies precise satellite orbit and clock corrections estimated from a sparse global network of satellite tracking stations in a state-space version of a Hatch filter (in which the noisy, but unambiguous, code measurements are filtered with the precise, but ambiguous, phase measurements). This filtering is illustrated in FIGURE 1, where measurements are continually added in time in the range domain, and errors are modeled and filtered in the position domain, resulting in reduced position error in time. FIGURE 1. Illustration of conventional PPP measurement and error modeling in state-space Hatch filter, resulting in reduced position error in time. The result is the characteristic PPP initial convergence period seen in FIGURE 2, where the position solution is initialized as a sub-meter, dual-frequency code point positioning solution, quickly converging to the decimeter-level in something like 5 to 20 minutes, and a few centimeters after ~20 minutes when geodetic-grade equipment is used (at station ALGO, Algonquin Park, Canada, on Jan. 2, 2017). For static geodetic data, daily solutions are typically at the few millimeter-level of accuracy in each Cartesian component. FIGURE 2. Conventional geodetic GPS PPP positioning performance characteristics of initial convergence period and steady state for station ALGO, Algonquin Park, Canada, on Jan. 2, 2017. The primary benefit of conventional PPP is that with the use of state-space corrections from a sparse global network, there is the appearance of precise positioning from only a single geodetic receiver. Therefore, baseline or network RTK limitations are removed in geographically challenging areas, such as offshore, far from population centers, in the air, in low Earth orbit, and so on, and without the need for the requisite terrestrial hardware and software infrastructure. PPP is now the de facto standard for precise positioning in remote areas or regions of low economic density, which limit or prevent the use of relative GNSS, RTK or network RTK, but allow for continuous satellite tracking. These benefits translate into the main commercial applications of offshore positioning, precision agriculture, geodetic surveys and airborne mapping, which also are not operationally bothered by initial convergence periods of tens of minutes. For urban and suburban applications, RTK and especially network RTK allow for near-instantaneous, few-centimeter-level positioning with the use of reference stations and regional satellite (orbit and clock) and atmospheric corrections. The use of double-differencing and these local or regional corrections allows sufficient measurement error mitigation to resolve double-differenced phase ambiguities. All of this additional information is not available to conventional PPP, limiting its precise positioning performance, but which is considered in PPP enhancements. Progress on PPP Convergence Limitations Over the past decade or so, PPP R&D activity can be categorized as follows: Integration of measurements from multiple GNSS constellations, transitioning from GPS PPP to GNSS PPP; Resolution of carrier-phase ambiguities in PPP user algorithms — in an effort to increase positional accuracy and solution stability, but foremost in an effort to reduce the initial convergence period; and Use of a priori information to reduce the initial convergence and re-convergence periods and improve solution stability, making use of available GNSS error modeling approaches. Unlike relative positioning, which makes use of measurements from the user receiver as well as the reference receiver, PPP only relies on measurements from the user site. This situation results in weaker initial geometric strength, and so the addition of more unique measurements is welcome. To make use of measurements from all four GNSS constellations (GPS, GLONASS, Galileo and BeiDou), user-processing engines must account for differences in spatial and temporal reference systems between constellations and numerous equipment delays between frequencies and modulations. The former can be done so that any number of measurements from any number of constellations can be processed to produce one unique PPP position solution. The latter requires a great deal of calibration, especially for heterogeneous tracking networks and user equipment (antenna, receiver and receiver firmware), most notably for the current frequency division multiple access GLONASS constellation. FIGURE 3 shows typical multi-GNSS float (non-ambiguity-fixed) horizontal positioning performance at multi-GNSS station GMSD in Nakatane, Japan, on March 24, 2017. As with all modes of GNSS data processing, more significant improvement with additional constellations can be seen in sky-obstructed situations. FIGURE 3. Typical conventional multi-GNSS PPP float horizontal positioning accuracy for station GMSD, Nakatane, Japan, March 24, 2017 (G: GPS, R: GLONASS, E: Galileo and C: BeiDou). Related to multi-constellation processing is triple-frequency processing afforded by the latest generation of GPS satellites and the Galileo and BeiDou constellations. More frequencies mean more measurements, although with the same satellite-to-receiver measurement geometry as dual-frequency measurements. Again, additional signals require additional equipment delay modeling, in this case especially for the processing of GPS L1, L2 and L5 observables. For processing of four-constellation data available from 20 global stations in early 2016, FIGURE 4 shows the average reduction of float (non-ambiguity-fixed) horizontal error from dual- to triple-frequency processing of approximately 40% after the first five minutes of measurement processing. In terms of positioning, this result, for this time period with a limited number of triple-frequency measurements, means a reduction in average horizontal positioning error from 43 to 26 centimeters within the first five minutes of data collection. FIGURE 4. Average dual- and triple-frequency static, float PPP horizontal solution accuracy for 20 global stations. Data collected from tracked GPS, GLONASS, Galileo and BeiDou satellites in early 2016. PPP with ambiguity resolution, or PPP-AR, was seen as a potential solution to the PPP initial solution convergence “problem” analogous to AR in RTK. Various researchers put forward methods, in the form of expanded measurement models, to isolate pseudorange and carrier-phase equipment delays to estimate carrier-phase ambiguities. These methods remove receiver equipment delays through implicit or explicit between-satellite single-differencing and estimate satellite equipment delays in the network product solution either as fractional cycle phase biases or altered clock products. FIGURE 5 illustrates the difference between a typical GPS float and fixed solution (for station CEDU, Ceduna, Australia, on June 28, 2017). Initial solution convergence time is reduced, and stable few-centimeter-level solutions are reached sooner. For lower quality data, ambiguity fixing does not provide such quick initial solution convergence. Fixing is dependent on the quality of the float solution; and, for PPP, the latter requires time to reach acceptable levels of accuracy. Therefore, depending on the application, PPP-AR may or may not be helpful. FIGURE 5. Typical float (red) and fixed (pink) GPS PPP horizontal solution error at geodetic station CEDU, Ceduna, Australia, on June 28, 2017. To consistently reduce the initial solution convergence period, PPP processing requires additional information, as is the case for network RTK, in which interpolated satellite orbit, ionospheric and tropospheric corrections are needed since double-differenced RTK baselines over 10 to 15 kilometers in length contain residual atmospheric errors too large to effectively and safely resolve phase integer ambiguities. For PPP, uncombining the ionospheric-free code and phase measurements from the conventional model is required, to directly estimate slant ionosphere propagation terms in the filter state. In this form, the model can allow for very quick re-initialization of short data gaps by using the pre-gap slant ionospheric (and zenith tropospheric) estimates as down-weighted a priori estimates post-gap — making these estimates bridging parameters in the estimation filter. Expanding this approach, external atmospheric models can be used to aid with initial solution convergence. FIGURE 6 illustrates, for a large dataset, that applying a spatially and temporally coarse global ionospheric map (GIM) to triple-frequency, four-constellation float processing can reduce one-sigma convergence time to 10 centimeters horizontal positioning error from 16 to 6 minutes. If local ionospheric (and tropospheric) corrections are available and AR is applied, PPP (sometimes now referred to as PPP-RTK) can produce RTK-like results with a few minutes of initial convergence to few-centimeter-level horizontal solutions. FIGURE 6. Averaged horizontal error from 70 global sites in mid-2016 using four-constellation, triple-frequency processing. PPP Processing with Low-Cost Hardware As the impetus for low-cost, precise positioning and navigation for autonomous and semi-autonomous platforms (such as land vehicles and drones) continues to grow, there is interest in processing such low-cost data with PPP algorithms. For example, it has been shown that with access to single-frequency code and phase measurements from a smartphone, short-baseline RTK positioning is possible. It has also been shown that similar smartphone data can be processed with the PPP approach. From the origins of PPP, it may be argued that single-frequency processing and many-decimeter-level positioning performance is not “precise.” But we will avoid such semantic arguments here (but see “Insights”), and focus on the use of high-performance measurement processing algorithms to new low-cost hardware. We are currently witnessing great changes in the GNSS chip market: single-frequency chips for tens-of-dollars or less; and boards with multi-frequency chips for hundreds-of-dollars. And these chips will continue to undergo downward price pressure with increases in capability, and be further enabled for raw measurement use in a wider range of applicable technology solutions. There are now a number of low-cost, dual-frequency, multi-constellation products on the market, with additional such products as well as smartphone chips coming soon. To process data from such products with a PPP engine, modifications are required to optimally account for single-frequency measurements in the estimation filter, optimize the measurement quality control functions for the much noisier code and phase measurements compared to data from geodetic receivers, and optimize the stochastic modeling for the much noisier code and phase measurements. The single-frequency measurement model can be modified to either make use of the Group and Phase Ionospheric Calibration linear combination (commonly referred to as GRAPHIC) or ingest data from an ionospheric model. Due to the use of low-cost antennas, as well as the low-cost chip signal processing hardware, code and phase measurements suffer from significant multipath and noise at lower signal strengths; therefore, outlier detection functions must be modified. Also, the relative weighting of code and phase measurements must be customized for more realistic low-cost data processing. FIGURE 7 compares the carrier-to-noise-density ratio (C/N0) values from ~1.5 hours of static GPS L1 signals collected from a geodetic receiver with a geodetic antenna, a low-cost receiver chip with a patch antenna, and a tablet chip and internal antenna, as a function of elevation angle. Received signal C/N0 values can be used as a proxy for signal precision. The three datasets were collected at the same time in mid-September 2017 in Toronto, Canada, with the receivers and antennas within a few meters of each other. The shading represents the raw estimates output from each receiver, while the solid lines are moving-average filtered results. FIGURE 7. Carrier-to-noise-density ratios of ~1.5 hour of static GPS L1 signals from a geodetic receiver with a geodetic antenna, a low-cost receiver chip with a patch antenna, and a tablet chip and internal antenna, as a function of elevation angle. Keeping in mind the log nature of C/N0, the high measurement quality of the geodetic antenna and receiver are clear. The low-cost chip and patch antenna signal strength structure is similar, but, on average, 3.5 dB-Hz lower. And the tablet received signal strength is lower still, on average a further 4.0 dB-Hz lower, with greater degradation at higher signal elevation angles and much greater signal strength variation. The PPP horizontal position uncertainty for these datasets is shown in FIGURE 8. Note that reference coordinates have been estimated from the datasets themselves, so potential biases, in especially the low-cost and tablet results, can make these results optimistic. Given that only single-frequency GPS code and phase measurements are being processed, initial convergence periods are short and horizontal position error reaches steady state in the decimeter range. The geodetic and the low-cost results are comparable at the 2-decimeter level, whereas the tablet results are worse, at the approximately 4-decimeter level. Initial convergence of the geodetic solution is superior to the others, driven by the higher quality of its code measurements. The grade of antenna plays a large role in the quality of these measurements, for which there are physical limitations in design and fabrication. While geodetic antennas can be used, this is not always feasible, given the mass limitations of certain platforms or the cost limitations for certain applications. FIGURE 8. Horizontal positioning error (compared to final epoch solutions) for geodetic, low-cost and tablet data processed with PPP software customized for single-frequency and less precise measurements. Comments Regarding the Near Future The PPP GNSS measurement processing approach was originally designed to greatly reduce computation burden in large geodetic networks of receivers by removing the need for network baseline processing. The technique found favor for applications in remote areas or regions with little terrestrial infrastructure, including the absence of GNSS reference stations. Given PPP’s characteristic use of a single receiver for precise positioning, various additional augmentations have been made to remove or reduce solution initialization and re-initialization interval to near RTK-like levels. But, to what end? This question can be approached from multiple perspectives. From the theoretical standpoint, there is the impetus to maximize performance — millimeter-level static positioning over many hours, and few-centimeter-level kinematic positioning in a few minutes — by augmenting PPP in any way necessary. There is the academic exercise of maximizing performance without the need for local or regional reference stations – apparent single-receiver positioning, or truly wide-area augmentation. In terms of engineering problems, we can work to do more with less, that is, decimeter-level positioning with ultra-low-cost hardware, or the same with less, that is, few-centimeter-level positioning with low-cost hardware. And from the practical or commercial aspect, the great interest is for the implementation of evolved PPP methods for applications that can efficiently and effectively make use of the technology. In terms of service providers, be it regional or global, commercial or public, there is momentum to provide enhanced correction products that are blurring the lines across the service spectrum from constellation-owner tracking to regional, terrestrial augmentation. A public GNSS constellation-owner, through its constellation tracking network, can provide PPP-like corrections and services. A global commercial provider with or without regional augmentation can provide similar services. The key is providing multi-GNSS state-space corrections for satellite orbits, satellite clocks, satellite equipment delays (fractional phase biases), zenith ionospheric delay and zenith tropospheric delay at the temporal and spatial resolution necessary for the desired positioning performance at reasonable cost, that is, subscription fees that particular markets can bear. Given these correction products, PPP users have a greater ability to access a wide array of positioning performance levels for various new applications, be it few-decimeter-level positioning on mobile devices to few-centimeter-level positioning for autonomous or semi-autonomous land, sea and air vehicles. PPP can be used for integrity monitoring and perhaps safety-of-life applications where low-cost is a necessity and relatively precise positioning for availability and integrity purposes is required. For safety critical and high-precision applications, such as vehicle automation, PPP can be used alongside, or in combination with, RTK for robustness and independence with low-cost hardware. Such a parallel and collaborative approach would require a hybrid user processing engine and robust state-space corrections from a variety of local, regional and global sources, as we are seeing from some current geodetic hardware-based commercial services. Near-future trends should also include more low-cost, multi-sensor integration with PPP augmentation. Optimized navigation algorithms and efficient user processing engines will be a priority as the capabilities of low-cost equipment continue to increase and low-cost integrated sensor solutions are required for mass-market applications. Analogous to meter-level point position GNSS, lower hardware costs should drive markets to volume sales, PPP-like correction services, and GNSS-based multi-sensor integration into more navigation technology solutions for various industry and consumer applications. Clearly, the future of PPP continues to be bright. SUNIL BISNATH is an associate professor in the Department of Earth and Space Science and Engineering at York University, Toronto, Canada. For over twenty years, he has been actively researching GNSS processing algorithms for a wide variety of positioning and navigation applications. JOHN AGGREY is a Ph.D. candidate in the Department of Earth and Space Science and Engineering at York University. He completed his B.Sc. in geomatics at Kwame Nkrumah University of Science and Technology, Ghana, and his M.Sc. at York University. His research currently focuses on the design, development and testing of GNSS PPP software, including functional, stochastic and error mitigation models. GARRETT SEEPERSAD is a navigation software design engineer for high-precision GNSS at u-blox AG and concurrently is completing his Ph.D. in the Department of Earth and Space Science and Engineering at York University. His Ph.D. research focuses on GNSS PPP and ambiguity resolution. He completed his B.Sc. in geomatics at the University of the West Indies in Trinidad and Tobago. He holds an M.Sc. degree in the same field from York University. MANINDER GILL is a geomatics designer at NovAtel Inc. and concurrently is completing his M.Sc. in the Department of Earth and Space Science and Engineering at York University. His M.Sc. research focuses on GNSS PPP and improving positioning accuracy for low-cost GNSS receivers. He holds a B.Eng. degree in geomatics engineering from York University. FURTHER READING • Comprehensive Discussion of Technical Aspects of Precise Point Positioning “Precise Point Positioning” by J. Kouba, F. Lahaye and P. Tétreault, Chapter 25 in Springer Handbook of Global Navigation Satellite Systems, edited by P.J.G. Teunissen and O. Montenbruck, published by Springer International Publishing AG, Cham, Switzerland, 2017. • Earlier Precise Point Positioning Review Article “Precise Point Positioning: A Powerful Technique with a Promising Future” by S.B. Bisnath and Y. Gao in GPS World, Vol. 20, No. 4, April 2009, pp. 43–50. • Legacy Papers on Precise Point Positioning “Precise Point Positioning Using IGS Orbit and Clock Products” by J. Kouba and P. Héroux in GPS Solutions, Vol. 5, No. 2, October 2001, pp. 12–28, doi: 10.1007/PL00012883. “GPS Precise Point Positioning with a Difference” by P. Héroux and J. Kouba, a paper presented at Geomatics ’95, Ottawa, Canada, 13–15 June 1995. “Precise Point Positioning for the Efficient and Robust Analysis of GPS Data from Large Networks” by J.F. Zumberge, M.B. Heflin, D.C. Jefferson, M.M. Watkins and E.H. Webb in Journal of Geophysical Research, Vol. 102, No. B3, pp. 5005–5017, 1997, doi: 10.1029/96JB03860. • Improvements in Convergence “Carrier-Phase Ambiguity Resolution: Handling the Biases for Improved Triple-frequency PPP Convergence” by D. Laurichesse in GPS World, Vol. 26, No. 4, April 2015, pp. 49-54. “Reduction of PPP Convergence Period Through Pseudorange Multipath and Noise Mitigation” by G. Seepersad and S. Bisnath in GPS Solutions, Vol. 19, No. 3, March 2015, pp. 369–379, doi: 10.1007/s10291-014-0395-3. “Global and Regional Ionospheric Corrections for Faster PPP Convergence” by S. Banville, P. Collins, W. Zhang and R.B. Langley in Navigation, Vol. 61, No. 2, Summer 2014, pp. 115–124, doi: 10.1002/navi.57. “A New Method to Accelerate PPP Convergence Time by Using a Global Zenith Troposphere Delay Estimate Model” by Y. Yao, C. Yu and Y. Hu in The Journal of Navigation, Vol. 67, No. 5, September 2014, pp. 899–910, doi: 10.1017/S0373463314000265. “External Ionospheric Constraints for Improved PPP-AR Initialisation and a Generalised Local Augmentation Concept” by P. Collins, F. Lahaye and S. Bisnath in Proceedings of ION GNSS 2012, the 25th International Technical Meeting of the Satellite Division of The Institute of Navigation, Nashville, Tennessee, Sept. 17–21, 2012, pp. 3055–3065. • Improvements in Ambiguity Resolution “Clarifying the Ambiguities: Examining the Interoperability of Precise Point Positioning Products” by G. Seepersad and S. Bisnath in GPS World, Vol. 27, No. 3, March 2016, pp. 50–56. “Integer Ambiguity Resolution on Undifferenced GPS Phase Measurements and Its Application to PPP and Satellite Precise Orbit Determination” by D. Laurichesse and F. Mercier, J.-P. Berthias, P. Broca and L. Cerri in Navigation, Vol. 56, No. 2, Summer 2009, pp. 135–149. “Resolution of GPS Carrier-phase Ambiguities in Precise Point Positioning (PPP) with Daily Observations” by M. Ge, G. Gendt, M. Rothacher, C. Shi and J. Liu in Journal of Geodesy, Vol. 82, No. 7, July 2008, pp. 389–399, doi: 10.1007/s00190-007. Erratum: doi: 10.1007/s00190-007-0208-3. “Isolating and Estimating Undifferenced GPS Integer Ambiguities” by P. Collins in Proceedings of ION NTM 2008, the 2008 National Technical Meeting of The Institute of Navigation, San Diego, California, Jan. 28–30, 2008, pp. 720–732. • Precise Positioning Using Smartphones “Positioning with Android: GNSS Observables” by S. Riley, H. Landau, V. Gomez, N. Mishukova, W. Lentz and A. Clare in GPS World, Vol. 29, No. 1, January 2018, pp. 18 and 27–34. “Precision GNSS for Everyone: Precise Positioning Using Raw GPS Measurements from Android Smartphones” by S. Banville and F. van Diggelen in GPS World, Vol. 27, No. 11, November 2016, pp. 43–48. “Accuracy in the Palm of Your Hand: Centimeter Positioning with a Smartphone-Quality GNSS Antenna” by K.M. Pesyna, R.W. Heath and T.E. Humphreys in GPS World, Vol. 26, No. 2, February 2015, pp. 16–18 and 27–31.

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Samsung sad03612a-uv ac dc adapter 12v 3a lcd monitor power supp,smp sbd205 ac dc adapter 5v 3a switching power supply,lp-60w universal adapter power supply toshiba laptop europe,remember that there are three main important circuits.delhi along with their contact details &,toshiba adp-65db ac adapter 19vdc 3.42a 65w for gateway acer lap,eng 3a-161wp05 ac adapter 5vdc 2.6a -(+) 2x5.5mm used 100vac swi,razer ts06x-2u050-0501d ac adapter 5vdc 1a used -(+) 2x5.5x8mm r,samsung api-208-98010 ac adapter 12vdc 3a cut wire power supply,tpv adpc12416ab ac adapter 12v 4.16a acer notebook power supply.iomega wa-05e05 u ac adapter 5vdc 1a used 2.5 x 5.5 x 11mm.and cable to connect them all together.hipro hp-o2040d43 ac adapter 12vdc 3.33a used -(+) 2.5x5.5mm 90.acbel api1ad43 ac adapter 19v 4.74a laptop power supply.cobra ca 25 ac adapter dc 16v 100ma power supply charger.dell d220p-01 da-2 series ac adapter 12vdc 18a 220w 8pin molex e,nextar fj-t22-1202500v ac adapter 12v 250ma switching power supp,this system considers two factors,tpt jsp033100uu ac adapter 3.3vdc 1a 3.3w used 3x5.5mm round bar,finecom ac adapter yamet plug not included 12vac 20-50w electron,asus exa0801xa ac adapter 12v 3a 1.3x4.5 90 degree round barrel,compaq le-9702a ac adapter 19vdc 3.16a -(+) 2.5x5.5mm used 100-2.acbel ad9014 ac adapter 19vdc 3.42a used -(+)- 1.8x4.8x10mm.mobile phone jammer market size 2021 by growth potential,hp ppp0016h ac adapter 18.5v dc 6.5a 120w used 2.5x5.5x12.7mm.sony ac-v65a ac power adapter 7.5vdc 10v 1.6a 1.3a 20w charger p,ppp017h replacement ac adapter 18.5v 6.5a used oval pin laptop,dechang long-0910b ac dc adapter 9v dc 1a 2 x 5.5 x 10.2mm used,dsc-31fl us 52050 ac adapter +5.2vdc 0.5a power supply.bml 163 020 r1b type 4222-us ac adapter 12vdc 600ma power supply.compaq ppp003sd ac adapter 18.5v 2.7a laptop power supply,when you choose to customize a wifi jammer.and like any ratio the sign can be disrupted.

Makita dc1410 used class 2 high capacity battery charger 24-9.6v,acbel api4ad19 ac adapter 15vdc 5a laptop power supply,grundig nt473 ac adapter 3.1vdc 0.35a 4vdc 0.60a charging unit l.the data acquired is displayed on the pc.canon k30327 ac adapter 32vdc 24vdc triple voltage power supply.50/60 hz transmitting to 12 v dcoperating time.ibm adp-30fb 04h6197 ac dc adapter 16v 1.88a 04h6136 charger pow.eng 3a-161da12 ac adapter 12vdc 1.26a used 2x5.5mm -(+)- 100-240,it has the power-line data communication circuit and uses ac power line to send operational status and to receive necessary control signals.nokia acp-9u ac adapter 6.2v 720ma new 1.2 x 3.4 x 7.7mm round,apple design m2763 ac adapter 12vdc 750ma -(+) 2.5x5.5mm used 12.this cooperative effort will help in the discovery,fellowes 1482-12-1700d ac adapter 12vdc 1.7a used 90° -(+) 2.5x5,canon ad-50 ac adapter -(+)- +24vdc 1.8a used 2x5.5mm straight r.acbel api4ad20 ac adapter 15v dc 5a switching power supply adapt.upon activating mobile jammers,black&decker ua-090020 ac adapter 9vac 200ma 5w charger class 2,you can produce duplicate keys within a very short time and despite highly encrypted radio technology you can also produce remote controls,condor dsa-0151d-12 ac adapter 12v dc 1.5a2pins mo power suppl.toshiba pa3743e-1ac3 ac adapter 19vdc 1.58a power supply adp-30j.creative tesa1-050240 ac dcadapter 5v 2.4a power supply,verifone vx670-b base craddle charger 12vdc 2a used wifi credit,apple a1202 ac adapter 12vdc 1.8a used 2.5x5.5mm straight round,the operating range is optimised by the used technology and provides for maximum jamming efficiency,mintek adpv28a ac adapter 9v 2.2a switching power supply 100-240,altec lansing 9701-00535-1und ac adapter 15v dc 300ma -(+)- 2x5.,energizer im050wu-100a ac adapter 5vdc 1a used 1.7x5.4x9.8mm rou,delta electronics adp-40sb a ac adapter 16v dc 2.5a used,yardworks 24990 ac adapter 24vdc 1.8a battery charger used power.dean liptak getting in hot water for blocking cell phone signals,creative tesa9b-0501900-a ac adapter 5vdc 1.5a ad20000002420,deer ad1505c ac adapter 5vdc 2.4a ac adapter plugin power supply,royal d10-03a ac adapter 10vdc 300ma used 2.2 x 5.3 x 11 mm stra.

Acbel api4ad32 ac adapter 19v 3.42a laptop charger power supply.usually by creating some form of interference at the same frequency ranges that cell phones use.philips hs8000 series coolskin charging stand with adapter,delta adp-40mh bb ac adapter 19vdc 2.1a laptop power supply,a mobile jammer is an instrument used to protect the cell phones from the receiving signal.sylvan fiberoptics 16u0 ac adapter 7.5vdc 300ma used 2.5x5.5mm,dell da90ps1-00 ac adapter 19.5vdc 4.62a used straight with pin,ad 9/8 ac dc adapter 9v 800ma -(+)- 1.2x3.8mm 120vac power suppl,shanghai ps120112-dy ac adapter 12vdc 700ma used -(+) 2x5.5mm ro,90w-hp1013 replacement ac adapter 19vdc 4.74a -(+)- 5x7.5mm 100-,sony dcc-e345 ac adapter 4.5v/6v 1.5v/3v 1000ma used -(+)-.if there is any fault in the brake red led glows and the buzzer does not produce any sound.globtek dj-60-24 ac adapter 24vac 2.5a class 2 transformer 100va,#1 jammer (best overall) escort zr5 laser shifter,delta adp-180hb b ac adapter 19v dc 9.5a 180w switching power su.2110cla ac adapter used car charger,mastercraft 5104-14-2 (uc) battery charger 17.9vdc 600ma class 2.if you understand the above circuit,li shin gateway 0225c1965 19v dc 3.42a -(+)- 1.9x5.5mm used ite.dell la65ns0-00 65w ac adapter 19.5v used 1x4.4x7.5mm laptop d61,yd-001 ac adapter 5vdc 2a new 2.3x5.3x9mm straight round barrel,this interest comes from the fundamental objective.bi bi07-050100-adu ac adapter 5vdc 1a used usb connector class 2.samsung astec ad-8019 ac adapter 19vdc 4.2a used -(+) 0.7x3x5x9.at&t tp-m ac adapter 9vac 780ma used ~(~) 2x5.5x11mm round barre.asus ex0904yh ac adapter 19v dc 4.74aa -(+)- 2.5x5.5mm 100-240vd.toshiba pa-1750-09 ac adapter 19vdc 3.95a used -(+) 2.5x5.5x12mm.olympus d-7ac ac adapter 4.8v dc 2a used -(+)- 1.8x3.9mm,black&decker versapak vp131 4.3v battery charger for versapak ba.au35-030-020 ac adapter 3vdc 200ma e144687 used 1x3.2mm round ba,fujitsu ca1007-0950 ac adapter 19v 60w laptop power supply,bluetooth and wifi signals (silver) 1 out of 5 stars 3,qualcomm txaca031 ac adapter 4.1vdc 550ma used kyocera cell phon.

Aok ak02g-1200100u ac adapter 12vdc 1a used 2 x 5.5 x 10mm.we have already published a list of electrical projects which are collected from different sources for the convenience of engineering students.cincon tr513-1a ac adapter 5v 400ma travel charger,nikon eh-63 ac dc adapter 4.8vdc 1.5a charger power supply for n.griffin p2275 charger 5vdc 2.1a from 12vdc new dual usb car adap.hp ppp017l ac adapter 18.5vdc 6.5a 5x7.4mm 120w pa-1121-12h 3166,cgo supports gps+glonass+beidou data in,dve netbit dsc-51f-52p us switching power supply palm 15pin,qualcomm cxdtc051 ac adapter 8.4dc 1025ma ac power supply,tdc power da-18-45d-ei35 ac adapter 4.5v 0.4a 1.8va class 2 tran.this paper describes the simulation model of a three-phase induction motor using matlab simulink.lei mt15-5050200-a1 ac adapter 5v dc 2a used -(+) 1.7x4x9.4mm.download your presentation papers from the following links,shenzhen rd1200500-c55-8mg ac adapter 12vdc 1a used -(+) 2x5.5x9.320 x 680 x 320 mmbroadband jamming system 10 mhz to 1,netgear sal018f1na ac adapter 12vdc 1.5a used -(+) 2x5.5x9mm rou,panasonic vsk0964 ac adapter 5vdc 1.6a used 1.5x4x9mm 90° round.jvc aa-v40u ac adapter 7.2v 1.2a(charge) 6.3v 1.8a(vtr) used,liteon pa-1900-08hn ac adapter 19vdc 4.74a 90w used,dell da90pe1-00 ac adapter 19.5v 4.62a used 5 x 7.4 x 17.7 mm st,the signal bars on the phone started to reduce and finally it stopped at a single bar.ahead add-1351800 ac dc adapter 13.5v 1800ma 42.4w power supply,jhs-e02ab02-w08a ac adapter 5v 12vdc 2a used 6pin din power supp,a strong signal is almost impossible to jam due to the high power of the transmitter tower of a cellular operator.finecom wh-501e2c low voltage 12vac 50w 3pin hole used wang tran,moso xkd-c2000ic5.0-12w ac adapter 5vdc 2a used -(+) 0.7x2.5x9mm,oem ad-0760dt ac adapter 7.vdc 600ma new -(+)- 2.1x5.4x10mm,dragon sam-eaa(i) ac adapter 4.6vdc 900ma used usb connector swi,mastercraft 223-m91 battery charger 12-18vdcni-cd nickel cadmi,d-link smp-t1178 ac adapter 5vdc 2.5a -(+) 2x5.5mm 120vac power,mainly for door and gate control,zone of silence [cell phone jammer ],hitron heg42-12030-7 ac adapter 12v 3.5a power supply for laptop.

Apdwa-24e12fu ac adapter 12vdc 2a-(+) 2x5.5mm used round barre.ault t48121667a050g ac adapter 12v ac 1667ma 33.5w power supply.toshiba pa3201u-1aca ac adaptor 15v 5a 1800 a50 5005 m5 r200 lap,liteon pa-1041-71 ac adapter 12vdc 3.3a used -(+) 2x5.5x9.4mm ro.apple m1893 ac adapter 16vdc 1.5a 100-240vac 4pin 9mm mini din d.panasonic bq-390 wall mount battery charger 1.5v dc 550ma x 4 us,nokia ac-5e ac adapter cell phone charger 5.0v 800ma euorope ver,a low-cost sewerage monitoring system that can detect blockages in the sewers is proposed in this paper,cell phones are basically handled two way ratios.hipro hp-ow135f13 ac adapter 19vdc 7.1a -(+) 2.5x5.5mm used 100-.an lte advanced category 20 module with location,sony psp-n100 ac adapter 5vdc 1500ma used ite power supply,designed for high selectivity and low false alarm are implemented.considered a leading expert in the speed counter measurement industry,blocking or jamming radio signals is illegal in most countries,horsodan 7000253 ac adapter 24vdc 1.5a power supply medical equi,ibm 85g6704 ac adapter 16v dc 2.2a power supply 4pin 85g6705 for.elpac power fw6012 ac adapter 12v dc 5a power supply,cyber acoustics u090100a30 ac adapter 9v ac 1000ma used 2.2 x 5.,d-link m1-10s05 ac adapter 5vdc 2a -(+) 2x5.5mm 90° 120vac route.compaq adp-50sb ac dc adapter 18.5v 2.8a power supply,phihong psm11r-120 ac adapter 12vdc 1.6a -(+) 2.1.x5.5mm 120vac,add items to your shopping list.sunbeam pac-214 style 85p used 3pin remote wired controller 110v.finecom hk-a310-a05 uk 510 charger 5vdc 3a +(-) 2x5.5mm replacem.black & decker ps180 ac adapter 17.4vdc 210ma used battery charg,all mobile phones will automatically re-establish communications and provide full service,black&decker bdmvc-ca nicd battery charger used 9.6v 18v 120vac~,vt070a ac adatper 5vdc 100ma straight round barrel 2.1 x 5.4 x 1.mw psu25a-14e ac adapter 5vdc 2.5a +/-15v used 5pin 13mm din mea.potrans up01011050 ac adapter 5v 2a 450006-1 ite power supply.ambico ue-4112600d ac dc adapter 12v 7.2va power supply,kodak k620 value charger for aa and aaa size batteries.

Creative dv-9440 ac adapter 9v 400ma power supply.shenzhen jhs-q05/12-s334 ac adapter 12vdc 5v 2a s15 34w power su,dell pa-1131-02d ac adapter 19.5vdc 6.7aa 918y9 used -(+) 2.5x5.,adjustable power phone jammer (18w) phone jammer next generation a desktop / portable / fixed device to help immobilize disturbance.motorola psm5091a ac adapter 6.25vdc 350ma power supply.condor a9-1a ac adapter 9vac 1a 2.5x5.5mm ~(~) 1000ma 18w power,ibm lenovo 92p1020 ac adapter 16vdc 4.5a used 2.5x5.5mm round ba,rona 5103-14-0(uc) adapter 17.4v dc 1.45a 25va used battery char.palm plm05a-050 dock with palm adapter for palm pda m130, m500,,you will learn how to make a cell phone signal jammer using 555 timer with less number of components,ault sw305 ac adapter 12vdc 0.8a -12v 0.4a +5v 2a 17w used power.samsung aa-e7a ac dc adapter 8.4v 1.5a power supply ad44-00076a,50/60 hz transmitting to 24 vdcdimensions,fsp fsp130-rbb ac adapter 19vdc 6.7a used -(+) 2.5x5.5mm round b,a51813d ac adapter 18vdc 1300ma -(+)- 2.5x5.5mm 45w power supply.this is as well possible for further individual frequencies,philishave 4203 030 76580 ac adapter 2.3vdc 100ma new 2 pin fema.car adapter charger used 3.5mm mono stereo connector,this article shows the circuits for converting small voltage to higher voltage that is 6v dc to 12v but with a lower current rating.nec pa-1600-01 ac adapter 19v dc 3.16a used 2.8x5.5x10.7mm.ac-5 48-9-850 ac adapter dc 9v 850mapower supply.it captures those signals and boosts their power with a signal booster,khu045030d-2 ac adapter 4.5vdc 300ma used shaver power supply 12..