Xona Space Systems is having a busy month. The positional satellite company, based in Burlingame, Calif., was the subject of two big announcements in early August: one announcing FCC approval for their constellation, and the other announcing a successful GNSS spoofing test in Japan.
Put together, they show that the company is in a position to have a potentially meaningful effect on terrestrial positioning and navigation, and one that could help to mitigate some potentially serious threats.
Lower orbit, stronger signals
The product at the centre of these announcements is Xona’s “Pulsar” satellites. In brief, the Pulsars are essentially navigation satellites, serving much the same purpose as existing GPS satellites: providing positioning, navigation and timing (PNT) information to terrestrial devices.
The difference is the orbit; while Global Positioning System (GPS) and other global navigation satellite systems (GNSS) are in medium Earth orbits (MEO) of approximately 20,000 km from Earth, Xona’s Pulsars operate in low Earth orbit (LEO). The LEO orbits do mean that there will need to be far more Pulsar satellites in order to ensure global coverage, yet there are also potential advantages that make up for that.
Since the signal doesn’t have to travel as far, the signal can be far stronger; Xona says that the signal can be 100 times stronger than traditional GPS, despite operating in the same frequency range used for GPS. That stronger signal allows the Pulsar to enable much more locational precision: terrestrial devices using Pulsar can determine their position within centimeters, even in remote locations with no base stations nearby.
(Xona recently highlighted the potential use of Pulsar for “plant-level” farming by Earth Rover, which uses autonomous farming drones to monitor crops and remove weeds without the need for chemical herbicides.)
Notably for Canadians, there’s another benefit: effective GPS in the far North. GPS satellites’ orbits mean that their signals have difficulty reaching the far North (or the far South). That makes navigation challenging in some of the most remote parts of the country, and also ones where reliable navigation is critically important. Pulsar, however, doesn’t have that restriction; Xona’s satellites can easily be put into orbits that cross over the Arctic and provide navigational signals in the North.
That’s why Xona opened an international office in Montreal, and why it received a Canadian Space Agency (CSA) SmartEarth grant worth $495,120 for research related to remote sensing and navigation — along with support from the Space Technology Development Program and the Canada-European Space Agency Cooperation Agreement.
Once the system is up and running, it can finally resolve the Northern problem, and provide precise navigational capabilities as well.
FCC clearance and production launches
The company described the Pulsar as “the first commercially funded navigation satellite ever launched,” and the first Pulsar satellite was launched in June 2025. Xona’s FCC announcement helps clear the way for full deployment.
On Aug. 3, they revealed that the American Federal Communications Commission had “authorized Xona to broadcast Pulsar navigation signals from our full constellation of more than 250 satellites in Low Earth Orbit,” marking “the last regulatory milestone needed to advance Pulsar from demonstration to scaled deployment.”
With that clearance done, Xona said that it will be launching “our first six production Pulsar satellites” in October. Other satellites are “already being built in our satellite production facility,” and “partners are integrating our signals into existing devices.”
While Xona didn’t give a timeframe for completing their constellation, the company said that this authorization allows them to “deploy our complete system in the years ahead.”
Defeating GPS jamming and spoofing
The other August announcement reveals a potential reason why the Pulsar rollout “in the years ahead” might end up being accelerated: mitigating the serious threat of GPS/GNSS jamming and spoofing.
On Aug. 4, one day after the FCC announcement, Japanese electronics company Furuno Electric Co. announced that they were “the first company in Japan to receive signals transmitted from Xona’s Pulsar,” including in a “GNSS spoofing test environment.” The tests were conducted at the Fukushima Robot Test Field, and included spoofing attacks that disrupted traditional GNSS signals.
Furuno said that they were able to receive the PNT signals from Pulsar “with only minor firmware modifications,” despite the interference.
This gets to the other potentially critical advantage of Xona’s Pulsar: it’s jamming- and spoof-resistant. As both companies and militaries become more dependent on GPS and GNSS signals in order to determine their position, the possibility of those signals being jammed or even spoofed with fake positioning data becomes an ever-growing threat.
As Furuno said, “risks such as jamming, spoofing, and service disruptions” can pose significant threats to critical infrastructure. “Mobile communications, broadcasting, financial transactions, power grid control, and public safety radio” can all be affected or disrupted if there’s a GNSS outage.
As autonomous vehicles and drones become more common in both civilian business and national security operations, the potential disruption will only increase.
It can become dangerous for aviation, as well. Back in May, a medical plane crashed in New Mexico during military jamming in the area, and European Commission President Ursula von der Leyen had her plane’s GPS system jammed on its way to Bulgaria in September of last year. There have even been reports of “mysterious, second-long bursts of GPS interference across Europe,” ones that have been potentially caused by Russian satellites jamming European GNSS signals.
These incidents show that even steering clear of well-known conflict zones may not be enough. Entire continents could be affected, and targeted attacks could happen beyond active combat zones.
Xona’s Pulsar constellation may end up becoming an extremely important strategic asset in that kind of environment. Pulsar’s stronger and more reliable signal can resist jamming, and Xona’s encryption of the signal can help to resist spoofing.
With growing concerns over potential use of anti-satellite weaponry, a distributed constellation of LEO satellites is also both easier to repair and replace compared to larger GPS/GNSS satellites in MEO, with less lost coverage if any single satellite becomes unavailable.
And that might well mean it ends up becoming an even better investment by the Canadian government. Access to a positioning system that works in the North would already be beneficial to Canada. Having one that’s also resistant to jamming, spoofing, and even kinetic threats, though, may become a critically important asset if (or when) Arctic shipping and resources turn it into contested territory.
Moving quickly on protected PNT
Xona Co-Founder and CTO Tyler Reid highlighted the importance of moving quickly on dealing with these threats in their announcement of the “Pulsar Verified” program, which is helping companies build compatible “chipsets, receivers, devices and simulation tools.”
Reid said that they’re focused on moving as quickly as possible, because jamming and spoofing are “now affecting the commercial systems the world depends on every day.” Reid added that the next step for Xona is to make the capability to use these hardened positioning capabilities “available to all devices and systems that need it.”
Facts Only
* Xona Space Systems received FCC approval for their constellation.
* A successful GNSS spoofing test was conducted in Japan involving Xona’s Pulsar signals.
* Pulsar satellites operate in Low Earth Orbit (LEO).
* Pulsar signals can be 100 times stronger than traditional GPS signals within the same frequency range.
* Pulsar enables positioning precision within centimeters in remote locations.
* Pulsar systems allow for navigation coverage in the far North, overcoming limitations of MEO GPS orbits.
* Xona launched their first Pulsar satellite in June 2025.
* The U.S. FCC authorized broadcasting Pulsar navigation signals from over 250 satellites in LEO on August 3.
* Xona plans to launch six production Pulsar satellites in October.
* Furuno Electric Co. received signals from Pulsar during a GNSS spoofing test in Japan.
* The system is claimed to be jamming- and spoofing-resistant.
Executive Summary
Xona Space Systems recently announced FCC approval for its constellation and a successful GNSS spoofing test in Japan, suggesting the company is positioned to influence terrestrial positioning and navigation. The core technology involves "Pulsar" satellites operating in Low Earth Orbit (LEO), differing from traditional GPS/GNSS which operate in Medium Earth Orbit (MEO). These LEO Pulsars are claimed to generate signals 100 times stronger than GPS, enabling centimeter-level positioning precision, and offer extended coverage to regions like the Arctic. Furthermore, the system is presented as resistant to jamming and spoofing, which mitigates threats to critical infrastructure reliant on GNSS.
The company has achieved a major regulatory milestone with FCC authorization for broadcasting Pulsar signals from over 250 satellites in LEO, with production launches planned for October. This development follows research supported by Canadian grants, demonstrating potential benefits in areas like remote sensing and navigation for Canada. The potential impact extends to mitigating vulnerabilities in systems used for mobile communications, financial transactions, and public safety, especially given the demonstrated resilience against jamming tests conducted by partners in Japan.
Full Take
The narrative positions a novel LEO satellite system as a strategic asset by emphasizing dual capabilities: superior signal strength/precision and inherent security against external manipulation. The transition from MEO constellations (GPS) to LEO orbital mechanics fundamentally changes the operational envelope, offering reach into previously underserved navigational areas, such as the far North, which creates a unique geopolitical dimension regarding resource control and navigation autonomy.
The juxtaposition of technical capability—achieving extreme precision and anti-spoofing—with geopolitical vulnerability—jamming and spoofing threats to critical infrastructure—creates a strong linkage between technological development and national security. The pattern emerges that novel, highly advanced technologies are simultaneously being developed and deployed in response to existing systemic vulnerabilities (jamming, kinetic threats). This suggests a reinforcing cycle where defensive capabilities become strategic assets, especially when applied to contested environments like the Arctic.
The implication for human agency lies in the potential shift of control over positional awareness. If a system can provide reliable navigation that is resilient against external interference, it alters the baseline assumption of infrastructural security and autonomy. The speed with which Xona moves toward "deployment" highlights how rapidly technological shifts can redefine strategic advantage, suggesting that cognitive sovereignty in this domain will depend less on traditional orbital mechanics and more on the resilience and distribution of the signal itself.
Sentinel — Human
The article synthesizes technical product news with pressing security concerns to build an argument for the strategic importance of LEO navigation systems like Pulsar.
