Topic: A-PNT
Maritime GNSS Interference: Practical Steps to Improve Operational Resilience
“GNSS interference is now considered a routine operational hazard in many maritime environments.” (Royal Institute of Navigation, 2026)
The issue of GNSS jamming and spoofing is of increasing concern to the maritime industry. Hundreds of vessels of vessels are reported to be exhibiting abnormal AIS behavior consistent with GNSS interference across the Arabian Gulf and Strait of Hormuz, with similar reports from the Red Sea and Baltics. Add to which collisions or groundings in 2025 linked directly to GNSS interference, and it’s clear that the risks associated with GNSS denial are growing, and with considerable operational impact.
Ground Control recently hosted a webinar with Andy Proctor (Rethink PNT), VP Royal Institute of Navigation, to discuss some of the deeper impacts of this activity, how it’s affecting maritime operations on a global scale, and what can be done to tackle the increasing risks. Here are our five key takeaways from the session.
1. GNSS disruption is becoming part of normal operations
For many operators, GNSS interference is no longer an exceptional event that only occurs in conflict zones. Reports from UK Maritime Trade Operations (UKMTO), the Joint Maritime Information Center (JMIC) and the Royal Institute of Navigation (RIN) demonstrate that jamming and spoofing are increasingly encountered in ports, strategic waterways and busy shipping routes. As interference becomes more widespread, voyage planning and bridge operations must account for the possibility that GNSS services may be degraded or unavailable during normal operations.
Preparing for GNSS disruption starts with understanding where interference is most likely to occur and ensuring bridge teams know how to recognize and respond when it does. Independent positioning technologies, such as Alternative Positioning, Navigation and Timing (A-PNT), provide an additional layer of resilience by maintaining an independent position reference when GNSS integrity is compromised.
Check: Do your crews know where GNSS disruption is most likely to occur on their routes?
2. Position data supports far more than navigation
Modern vessels share position and timing information across a wide range of onboard systems. ECDIS, AIS, radar overlays, communications, dynamic positioning, engineering systems and voyage reporting all rely, to varying degrees, on trusted GNSS-derived data. A single interference event therefore has the potential to affect multiple operational functions simultaneously, increasing bridge workload and reducing confidence in decision making.
Understanding these dependencies is becoming an important part of operational resilience. Mapping which systems consume GNSS data helps operators understand where additional verification, procedures or independent positioning capability may be appropriate. An A-PNT solution provides crews with an independent position reference that can be compared against GNSS to identify unexpected divergence before it affects operational decisions.
Check: Have you identified every system on board that depends on GNSS position or timing?
3. Spoofing creates a systemic integrity challenge
Unlike jamming, which generally results in an obvious loss of signal, spoofing introduces false but believable navigation data. Position and timing information may continue to be accepted by onboard systems, allowing inaccurate information to propagate throughout the vessel without immediately alerting the bridge team.
This makes early detection particularly important. Rather than simply identifying the loss of GNSS, resilient navigation increasingly depends on validating the integrity of the information being received.
Check: How would your bridge team recognize a spoofing event?
4. Recovery doesn’t end when the signal returns
Restoring GNSS reception doesn’t necessarily mean every onboard system has returned to a trusted operating state. Position, timing and dependent systems may all require verification before normal operations resume. Bridge teams therefore need clear recovery procedures alongside procedures for recognizing the initial interference event.
The Royal Institute of Navigation highlights that recovery should focus on restoring confidence in the vessel’s operational picture, rather than simply confirming that GNSS signals have returned. Independent position references can support this process by providing an additional source against which crews can validate navigation data during recovery.
Check: What procedures exist for validating system integrity after an interference event?
5. Resilience depends on preparation
Resilient positioning technology provides the foundation for maintaining reliable position and timing when GNSS is disrupted. Its effectiveness is strengthened by well-defined bridge procedures, crew training and a consistent approach to learning from operational incidents.
The webinar highlighted the importance of:
- Crew awareness and training
- Clear bridge procedures
- Reporting and learning from incidents
- Independent methods of verifying position and timingUnderstanding system dependencies.
Operational resilience comes from combining dependable technology with people and procedures that are prepared to respond consistently.
Check: What procedures exist for validating system integrity after an interference event?
Actions to strengthen GNSS resilience
✓ Map GNSS dependencies across onboard systems
✓ Train bridge teams to recognize jamming, spoofing and system integrity issues
✓ Review bridge procedures for interference and recovery
✓ Combine resilient positioning technology with clear procedures, crew training and operational safeguards
✓ Test navigation and safety systems under realistic interference scenarios
✓ Capture and share lessons from interference events
✓ Provide crews with practical operational guidance before entering high risk areas
✓ Monitor interference hotspots and incorporate them into voyage planning.
To learn more about GNSS resilience and maritime PNT:
- Read the Royal Institute of Navigation Maritime Interference Report (2026)
- Consider joining the Royal Institute of Navigation (RIN) and participating in its PNT Group and Maritime Navigation Group, as recommended during the webinar
- Watch the full webinar recording.
Watch: GNSS Spoofing & Jamming at Sea: Risks, Limits and Practical Responses
Hear directly from Andy Proctor, Vice President of the Royal Institute of Navigation, and Oliver Potter, COO at Ground Control, as they explore the operational impacts of GNSS interference, the latest industry research, and practical approaches to improving maritime resilience.
Building Resiliency with A-PNT
If the webinar raises questions about your team’s resilience against GNSS denial and you’d like more information, or a demo of our RockFLEET Assured solution, complete the form and one of our technical team will be in touch.
GNSS Jamming, Spoofing and A-PNT: Separating Maritime Navigation Facts from Fiction
For decades, maritime operations have relied on GNSS technologies such as GPS as the foundation of navigation. From ECDIS and AIS to fleet tracking, dynamic positioning, voyage optimization and security monitoring, almost every aspect of a vessel’s operational picture depends on accurate positioning, navigation and timing data. As a result, many operators have come to view GPS as a permanent, dependable utility that simply works in the background.
However, the maritime operating environment is changing. According to the 2026 Royal Institute of Navigation (RIN) Maritime GNSS Interference Report, 75% of mariners surveyed believe GNSS interference is increasing in frequency and severity. The report concluded that jamming, spoofing and other forms of interference now represent a significant safety and security concern for global shipping.
At the same time, the maritime industry is becoming more dependent on positioning data than ever before. Navigation, compliance, fleet management, security operations and digital reporting systems all rely on trusted location information. When GNSS integrity is compromised, the consequences extend far beyond the bridge and affect navigation, AIS, communications, timing systems and fleet monitoring simultaneously.
This growing challenge is driving interest in Assured Positioning, Navigation and Timing (A-PNT) technologies, but it is also creating confusion. What exactly is A-PNT? How does it work? Can it replace GPS? Is it accurate enough? And why are more maritime operators looking at solutions such as RockFLEET Assured powered by Iridium PNT?
To answer those questions, let’s separate fact from fiction.
Myth 1: If GPS shows a position, it must be correct
One of the most dangerous assumptions in modern navigation is that a displayed position is automatically a trusted position. Most maritime operators have experienced temporary GPS outages or degraded signals, but spoofing presents a very different challenge.
Unlike jamming, which often causes signal loss and triggers alarms, spoofing manipulates GNSS signals to convince a receiver that a vessel is somewhere it’s not. The vessel’s navigation systems may even continue to display what appears to be a perfectly valid position, complete with plausible course, speed and track information. To the bridge team, everything may appear normal.
This is what makes spoofing particularly concerning. A vessel can be provided with a believable but entirely false navigational picture while vessel operators, bridge crew and shore-side teams remain unaware that anything is wrong. The real challenge is having an independent way to verify that the reported position is genuine and trustworthy.

Myth 2: GNSS interference is only a military problem
There was a time when jamming and spoofing were largely associated with military operations and conflict zones. Today, that assumption no longer reflects reality, with commercial vessels operating in regions such as the Baltic Sea, Black Sea, Eastern Mediterranean, Red Sea and Persian Gulf increasingly encountering GNSS disruption. What was once considered an exceptional event is becoming a routine operational risk. Maritime operators are discovering that navigation resilience is not confined to defense but has become a commercial, safety and compliance issue as well.
As shipping becomes increasingly digitalized, the consequences of GNSS disruption extend far beyond the bridge. Fleet management systems, voyage reporting, security monitoring and regulatory compliance processes all depend on accurate positioning data. When that data becomes compromised, the effects can be felt throughout an organization.
Myth 3: The bridge crew would know immediately if GPS was being attacked
Many people assume that any interference with GPS would be obvious. But in reality, the nature of the attack determines how visible it is.
Jamming is often relatively straightforward to identify because GNSS/GPS receivers lose access to the signals they require. Position fixes may be lost, alarms may activate and navigational systems may indicate degraded performance, making operators generally aware that something has happened.
Spoofing, on the other hand, is far more subtle. Because the GNSS/GPS receiver continues to calculate a position, there may be no immediate indication that the data being presented is false. In some cases, a spoofed position may drift very gradually from reality, making it even harder to detect through normal operational procedures. This distinction is one of the key reasons why maritime organizations are increasingly looking beyond traditional GNSS-only navigation architectures.
Myth 4: A-PNT is simply another GPS
A common misunderstanding is that A-PNT exists to replace GPS. In reality, A-PNT is not a single technology, and it’s not shorthand for a satellite-based GPS alternative.
GPS and other GNSS constellations provide positioning, navigation and timing information, but the signals arriving at the Earth’s surface are extremely weak. By the time a GPS signal has traveled approximately 20,000 kilometers from Medium Earth Orbit, it can be vulnerable to interference, intentional jamming and sophisticated spoofing attacks.
This vulnerability is one of the reasons GNSS disruption has become such a significant concern for maritime operators. A-PNT technologies are designed to address this challenge by adding independent sources of trusted positioning, navigation or timing information when GNSS integrity becomes unreliable. The objective is to help operators determine whether the position information they are using can be trusted.
RockFLEET Assured takes this approach using Iridium PNT technology as an independent source of assured positioning. Unlike GPS satellites operating approximately 20,000 kilometres above the Earth, the Iridium constellation operates in Low Earth Orbit, meaning its satellites are around 25 times closer to the Earth’s surface than traditional GNSS satellites.
That difference matters. The stronger LEO signal makes Iridium PNT more resilient to many forms of interference and harder to overwhelm through conventional jamming techniques.
Just as importantly, Iridium PNT provides authenticated positioning information that can be used independently of GNSS. This gives operators a trusted reference point against which GPS-derived positions can be compared.
So A-PNT is not “another GPS”. It’s a way of improving confidence in position, navigation and timing when GNSS can no longer be assumed to be reliable. In RockFLEET Assured, Iridium PNT provides the independent reference that makes that assurance possible.

Myth 5: A-PNT is intended to replace existing navigation systems
Modern maritime navigation has always been based on cross-checking information from multiple sources. Experienced mariners do not rely on a single radar, a single sensor or a single chart reference. Instead, navigational confidence comes from verification.
The same principle applies to positioning.
Radar, visual observations, ECDIS, AIS, gyrocompasses and GNSS all contribute to situational awareness, and A-PNT fits naturally within this layered approach. The ability to compare independent sources of positioning information gives operators greater confidence when data aligns and provides an early warning when it does not.
Rather than replacing existing systems, A-PNT provides an independent reference that allows bridge crews and shore-side teams to validate critical navigation data to confirm whether it can be trusted, identify potential GNSS anomalies and make more informed decisions.
Myth 6: Shore teams will always spot a spoofing incident
Fleet monitoring centres can be a valuable safeguard against navigational anomalies, but effectiveness is often limited by the fact that they rely on the same GNSS-derived data the vessel is using. If a ship’s navigation system is receiving a spoofed position, that incorrect information may also be transmitted through AIS, fleet tracking platforms and operational reporting systems.
As a result, both the vessel and the shore team can end up sharing the same inaccurate picture. Rather than providing an independent check, the entire operational chain becomes dependent on compromised data. This is where A-PNT provides significant value by offering a trusted reference point independent of GNSS signals.
Myth 7: Accuracy is all that matters
When evaluating positioning technologies, many operators instinctively focus on accuracy; while accuracy remains important, it’s only one part of the equation.
In a spoofing scenario, a GNSS receiver may report exceptional accuracy while still providing a completely incorrect position. A-PNT shifts the focus from accuracy alone to integrity and trustworthiness. In GNSS and GPS denied environments, understanding whether a position can be relied upon becomes just as important as knowing how many meters of accuracy it claims to provide. For maritime decision makers, trusted positioning often matters more than marginal differences in precision.
RockFLEET Assured combines authenticated positioning with practical operational accuracy. Performance improves when multiple Iridium satellites are overhead and, because the Iridium constellation naturally clusters towards the polar regions, positioning performance becomes even stronger at higher latitudes. For example, typical median positioning accuracy is approximately 25 meters in Norway (69°N) and around 42 meters in the Red Sea (19°N), providing a reliable independent position reference across global shipping routes.
For large commercial vessels, tankers, bulk carriers and container ships measuring well over 100 meters in length, this level of accuracy is highly operationally valuable. Whether validating a vessel’s reported position, supporting fleet monitoring or identifying GNSS anomalies, a trusted position accurate to within a few tens of meters is far more valuable than a highly accurate GPS position that has been spoofed or disappears altogether due to jamming.
Myth 8: Assured positioning means replacing existing systems
A common misconception is that improving positioning resilience means making extensive modifications to a vessel’s existing navigation systems.
In practice, this doesn’t have to be the case. A-PNT is a broad approach to improving confidence in positioning, navigation and timing when GNSS cannot be assumed to be reliable. How it is implemented depends on the vessel, the operational requirement and the technology being used.
RockFLEET Assured has been developed with practical vessel installation in mind. The system comprises a compact Above Deck Unit that can be mounted in a suitable location with up to 100 meters of cabling, giving installers flexibility across a wide range of vessel types and layouts.
Once installed, RockFLEET Assured integrates with existing bridge and operational systems using standard maritime interfaces, including NMEA protocols. This means assured positioning data can be shared with navigation, monitoring and reporting systems already in use, without requiring major changes to established bridge workflows or operational procedures.
For fleet operators, this helps minimize installation complexity, reduce downtime and avoid the need for wholesale replacement of existing navigation equipment.
The result is a practical enhancement to a vessel’s navigation resilience, rather than a complete redesign of its navigation infrastructure. Bridge teams can continue using familiar systems, while RockFLEET Assured provides an independent source of authenticated positioning information that helps them validate GNSS data and make more confident navigational decisions.

Myth 9: GNSS only affects navigation
The term GNSS often leads people to think exclusively about chart displays and route planning, but in practice, positioning, navigation and timing (PNT) data underpins a much broader range of maritime operations.
Accurate position information influences AIS transmissions, fleet monitoring, voyage reporting, security operations, geofencing, compliance requirements and incident investigations. Timing information also plays a critical role in synchronising systems and maintaining operational consistency.
When GNSS integrity is compromised, the effects extend far beyond the bridge. An inaccurate position can quickly become an inaccurate operational picture across the entire organization.
Myth 10: A-PNT is only relevant in high risk regions
GNSS jamming and spoofing are most frequently reported in geopolitical hotspots, but navigation resilience should not be viewed as something only needed when operating in high risk waters.
Commercial vessels rely on trusted GNSS/GPS and PNT data throughout every voyage and as fleets become more connected and digitalized, dependence on this data continues to grow. That means the consequences of compromised positioning extend far beyond navigating through a conflict zone; it can affect operational efficiency, regulatory compliance, fleet visibility and decision-making across an entire organization.
Forward-thinking shipowners and fleet operators are therefore beginning to view A-PNT as part of a broader navigation resilience strategy rather than a solution reserved for exceptional circumstances. The independent position verification that A-PNT delivers provides an additional layer of resilience, helping bridge teams and shore-based operators maintain confidence in the information they rely on, wherever their vessels operate.
Further, as digital shipping and increasingly automated vessel operations continue to evolve, trusted positioning is likely to become a fundamental requirement for safe, resilient and efficient maritime operations, not just in high risk regions, but across the global shipping industry.
Building Confidence in a Contested Navigation Environment
While the maritime industry’s utilization of GNSS has delivered enormous operational benefits, it has also introduced new vulnerabilities. Jamming and spoofing are not concerns discussed only in military circles, but are real world incidents across the world’s busiest shipping lanes.
The focus is shifting from simply obtaining a position to ensuring that the position can be trusted. That’s why A-PNT solutions such as RockFLEET Assured, powered by Iridium PNT, play an increasingly important role. RockFLEET Assured provides maritime operators with something increasingly valuable in today’s contested navigation environment: an independent, authenticated and resilient source of positioning information.
In a world where navigation systems can be deceived, resilience comes not from having more data but from having greater confidence in the data you use. The future of maritime navigation will therefore be defined not solely by accuracy, but by assurance, integrity and trust.
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Whether you’re just starting to explore A-PNT or are ready to move ahead with an A-PNT solution, we’ll work with you to find the right device for your application.
GNSS Vulnerabilities at Sea, and the Rise of Assured PNT Resilience
From commercial shipping lanes and port approaches to offshore energy platforms and autonomous vessel trials, trusted Positioning, Navigation, and Timing (PNT) underpins safety, efficiency, and regulatory compliance. Every decision from route optimization to collision avoidance relies on accurate and continuous positioning data, and for decades, Global Navigation Satellite Systems (GNSS), including GPS, GLONASS, Galileo, and BeiDou, have served as the backbone of maritime PNT.
These systems provide global coverage, high accuracy under ideal conditions, and enable reliable tracking of maritime operations at scale. However, there is a well documented rise in maritime GNSS/GPS disruption, including deliberate jamming and increasingly sophisticated spoofing attacks. The reality is, conventional GPS-based solutions were never designed for today’s contested, congested, and adversarial signal environment, with traditional GNSS/GPS signals increasingly exposed in ways that were not anticipated when they were first deployed.
Traditional mitigation and defence strategies attempt to address these risks but often fall short; as a result, existing GPS-based solutions are reactive rather than resilient. For instance, they can identify when something is wrong, but are not inherently designed to guarantee reliable, trusted positioning when GNSS is compromised. The result is operational risk that extends beyond safety and security, and to efficiency, insurance exposure, regulatory compliance, and ultimately, trust in maritime systems. This is where Assured PNT enters the conversation and where Iridium PNT positions itself as a fundamentally different approach.
This blog explores how existing maritime GPS solutions are no longer equipped for today’s evolving threat landscape, and how Iridium PNT enables reliable, trusted, and continuous maritime operations in compromised GNSS/GPS environments.
The Cracks in Conventional Maritime GPS
1. Anti-Jamming GNSS Systems
Anti-jamming GNSS systems were developed to suppress interference using directional antennas and filtering techniques. These methods work by attempting to block out noise and prioritise signals that appear clean. However, the threat landscape has evolved beyond simple interference. Modern threats don’t just jam, they deceive. Combined jamming and spoofing attacks create ambiguous signal environments where systems must decide which signals are real and which should be ignored. The result is confusion, with decision making becoming uncertain precisely when certainty is required.
2. Anti-Spoofing Technologies
Anti-spoofing solutions attempt to validate whether a signal is genuine or manipulated, and often rely on similar logic and assumptions as anti-jamming technologies of rules-based detection and signal validation. But the logic and assumptions are increasingly outdated. As spoofing techniques have become more advanced with greater precision and adaptability, these systems have struggled to keep pace. Signal mimicry is more precise, timing offsets are subtler, and attack patterns are adaptive – more closely resembling legitimate behaviour. This leaves anti-spoofing approaches in a reactive rather than predictive position, constantly trying to respond to threats that are evolving faster than the defences designed to stop them.
3. Multi-GNSS Receivers
Using multiple constellations (GPS, Galileo, GLONASS, BeiDou) is often framed as a way to improve resilience, but in practice, it introduces more inputs without addressing the core weakness. GPS, Galileo, and other systems share similar signal structures and operate in comparable frequency ranges, which makes them vulnerable to the same types of interference and spoofing. When disruption occurs, it tends to affect all constellations in similar ways, meaning having more signals does not equate to having more trustworthy information. If one is compromised, the likelihood is high that others are affected as well. This creates a false sense of redundancy, i.e., more inputs, but not more independence.
4. Differential GPS (DGPS)
DGPS enhances positional accuracy using ground-based correction signals, and in stable environments, it performs well. But accuracy is not the same as trust. DGPS still depends on the integrity of the underlying GNSS signal, and in a jamming or spoofing scenario, it remains vulnerable in contested environments. In fact, it can amplify risk by making incorrect positioning appear more precise, giving maritime operators a false sense of confidence in data that may already be compromised.
5. Terrestrial Backup System
Terrestrial backup systems (e.g., eLoran, radio navigation systems) provide an alternative to satellite-based positioning by using shore-based infrastructure. While effective in coastal areas, their usefulness diminishes rapidly beyond those boundaries. Coverage is inherently limited, and the cost and complexity of deploying such systems at scale make them impractical for global maritime operations. For vessels operating in the open ocean, these solutions cannot provide the continuity required for safe and efficient navigation.
The Core Issue is Dependency on a Single Domain
Taken together, these approaches reveal a shared limitation: they attempt to improve or protect GNSS/GPS, but they don’t remove dependence on it. Whether through signal reinforcement, interference detection, or redundancy within the same domain, the underlying dependency remains intact.
It’s worth noting that modern bridge systems can present a layered navigational picture by combining GNSS with radar, AIS, INS, and ECDIS. That improves redundancy, but in most merchant vessels GNSS still provides the primary position input, so interference or false data can still degrade overall situational awareness unless it is independently cross-checked.
Ultimately, there are a limited number of truly independent alternatives to fall back on, as most existing mitigations operate as layers within the same ecosystem rather than as genuinely distinct sources of truth. As a result, what appears to be redundancy is, in many cases, simply duplication within a shared vulnerability.
This is the critical gap that Iridium PNT and RockFLEET Assured are designed to address. Rather than attempting to further fortify GNSS-dependent systems, Iridium PNT reduces reliance on any single domain altogether, enabling a more secure, resilient, and multi-domain approach to assured navigation.
Solving GNSS Dependency with A-PNT and Iridium PNT
Assured Positioning, Navigation and Timing (A-PNT) is the idea of maintaining trusted position, navigation, and timing when GNSS is degraded, denied, or untrusted. It goes beyond basic capability to include resilience, integrity, and trust, helping vessels maintain safe navigation, operational continuity, and compliance despite interference.
Iridium PNT is one way of delivering that resilience. It’s the only commercially available satellite-based PNT service that operates independently of GNSS, meaning it doesn’t rely on GPS, Galileo, GLONASS, or BeiDou. In a landscape where most backup solutions still depend on the same GNSS/GPS signals, that independence is critical.
Unlike conventional GNSS, which relies on Medium Earth Orbit (MEO) satellites transmitting very weak signals over vast distances, Iridium PNT operates from a Low Earth Orbit, or LEO, constellation, bringing satellites much closer to Earth. This results in stronger signals and contributes to greater resistance to jamming and spoofing in real world maritime environments.


RockFLEET Assured for Resilient Maritime Navigation
RockFLEET Assured represents a necessary shift away from single GNSS/GPS signal dependency. By leveraging the independent and highly secure Iridium PNT signal, vessels aren’t left without a trusted source of navigation data in the event of GPS jamming, spoofing and denial. This enables uninterrupted operations across open ocean, congested shipping lanes, and high risk regions where jamming and spoofing activity is increasingly prevalent.
For optimum navigational assurance, RockFLEET Assured continuously compares the trusted Assured PNT position with GNSS and raises alerts when position integrity is at risk. Rather than relying on GNSS alone, it uses an authenticated Iridium PNT position source to help identify anomalies and highlight when GNSS may be jammed, spoofed, or otherwise unreliable.
By cross-checking GNSS against trusted A-PNT data, RockFLEET Assured helps reduce the risk of false positioning and supports safer navigation and better operational awareness. Beyond resilience, it’s also engineered for practical deployment supporting cable runs of up to 100 m for flexible installation, and an optional backup battery that can continue tracking and reporting if vessel power is interrupted.
From Accuracy to Assurance
In today’s maritime and security operations, the core challenge extends beyond positioning accuracy, but trust in the data itself. Existing GNSS/GPS-based solutions, even when layered with mitigation technologies, remain dependent on a single domain that is increasingly exposed to disruption, deception, and interference. This creates a critical gap in trusted, continuous navigation at sea, particularly in contested or high risk environments where GNSS/GPS reliability cannot be assumed.
Iridium PNT and RockFLEET Assured directly address this gap by introducing a truly independent and resilient source of positioning data that operates outside the limitations of traditional GNSS. By combining multi-domain inputs with real time integrity assessment and prioritizing assured, trustworthy signals, they move maritime navigation from reactive detection to proactive resilience. The future of navigation at sea will be defined by this ability to operate with confidence in uncertain and contested GNSS/GPS environments. A-PNT is central to that future, and RockFLEET Assured is built to deliver it.
Trusted A-PNT For Navigational Certainty at Sea
For over 20 years, we’ve delivered resilient satellite solutions for remote connectivity and secure communications. We’re proud to support commercial shipping, offshore operators, and maritime security providers with dependable satellite connectivity and assured positioning capabilities designed for the realities of the modern maritime domain.
If you want to offer A-PNT solutions as part of the security strategy for your maritime clients, complete the form, or email hello@groundcontrol.com and we’ll reply within one working day.
Why GPS Alone Is No Longer Enough [Infographic]
Maritime, aviation, and defense operations all depend on GPS for positioning, navigation, and timing. But, as our infographic highlights, that dependence comes with real risk: GPS is vulnerable to jamming and spoofing, and relying on it alone creates a single point of failure.
That risk is becoming harder to manage. Reported interference incidents continue to rise across key regions, including a 127% rise in Baltic incidents between Q1 and Q2 2025, more than 1,000 vessels affected in Sudan and the Red Sea in 2025, and 5,655 flights spoofed in the Nicosia FIR in July to August 2024.
Why Modern GPS Threats Demand More Than Anti-Jamming
For a long time, disruption was often discussed mainly as a jamming problem. However, attack methods evolve, and disruption can now shift rapidly between jamming and spoofing. These are not the same threat; jamming tries to deny the signal, whereas spoofing tries to deceive the receiver. A solution that focuses only on anti-jamming may still struggle when an attack alternates between blocking the signal and imitating it.
That’s why resilience has to be about more than signal protection alone. It has to be about maintaining a trusted source of positioning even when GNSS is disrupted, denied, or manipulated.
What A-PNT Actually Means
A-PNT is best understood as a resilience approach, not a single technology. As the infographic sets out, it adds redundancy, position cross checking, trusted timing, and operational continuity when GNSS alone cannot be relied on. A-PNT isn’t “one new signal replacing GPS”; it’s a broader strategy for reducing dependence on a single vulnerable source.

Where Iridium PNT Fits
Iridium PNT supports a broader A-PNT strategy by providing a completely separate source of PNT, with zero dependence on GPS. That independence is critical. If a backup still depends on GNSS somewhere in the chain, it may inherit the same vulnerability. Iridium PNT operates as a wholly separate system, giving operators an independent source they can use when GNSS is disrupted or cannot be trusted.
It also brings a major security advantage: the signal is encrypted and authenticated. In practical terms, that makes spoofing exceptionally difficult, because the receiver is not simply accepting any signal that appears plausible; it’s validating a trusted source.
Why That Matters Operationally
In the real world, navigation resilience is defined by whether a system continues to deliver trusted data under pressure. That means operators need more than a warning that GNSS has been compromised. They need:
- An independent source of position and timing
- Confidence that the source itself is trusted
- Continuity if infrastructure is damaged
- A solution that works with the systems they already use.
RockFLEET Assured is designed for use in contested and high risk operating environments. Its architecture supports flexible installation, with compute power in the above-deck unit and cable runs of up to 100 meters. That means the unit can be installed away from the bridge in a discreet location, making it harder to identify, harder to interfere with, and harder to damage deliberately.
If a cable is cut or a unit is attacked, what matters next is whether visibility disappears immediately. RockFLEET Assured includes backup battery capability, allowing continued transmission for a period even after cable loss. That additional continuity can matter enormously in a live incident. Even limited continued reporting can preserve situational awareness, support response, and reduce the risk of going blind at the worst possible moment.
Another key strength is flexibility. RockFLEET Assured can be used with our chartplotter, with a customer’s own chartplotter, or integrated into wider bridge systems. That gives operators multiple options to adopt resilient PNT capability without being forced into a rigid operational model. For many customers, the easier a resilient system is to integrate into existing workflows, the more likely it is to be deployed effectively and trusted by crews.
GPS Still Plays a Vital Role, But it is No Longer Enough on its Own
As jamming and spoofing attacks become more sophisticated, more deceptive, and more hostile, operators need more than detection. They need trusted alternatives, genuine independence from GNSS, interoperability with existing systems, and resilience that holds up in the real world.
A-PNT helps by reducing dependence on one vulnerable source. Iridium PNT strengthens that approach by providing an encrypted, authenticated, wholly separate, satellite-based PNT capability, and RockFLEET Assured makes that capability operationally useful: survivable, flexible, interoperable, and built for continuity under pressure. That is what modern navigational resilience looks like.
Talk to us about resilience in practice
To explore how RockFLEET Assured can strengthen navigation resilience in your existing bridge environment, get in touch with our team.
Complete the form, or email hello@groundcontrol.com, and we will respond within one working day.
Why Navigation Resilience Is Becoming a Standard Security Deliverable at Sea
Given that 90% of international trade is carried by sea, maritime safety is fundamental. For most of the modern maritime era, the formula was relatively simple: assess the route, understand the threat environment, adapt operating procedures, and, when justified by risk, place experienced personnel on board to deter, respond, and protect. That approach still matters, but it is no longer sufficient.
Today, merchant shipping is delegating a far broader range of responsibilities to private maritime security companies (PMSCs). The remit is no longer limited to protection from physical threats; increasingly, it also includes support for the operational risks created by disruption to critical onboard systems. One of the clearest and fastest growing examples is navigation resilience.
For maritime security providers supporting secure fleet operations, advising owners and operators, and delivering risk-managed transit, this change is already taking shape in practice. Clients may not use the term “A-PNT” (Assured Position, Navigation, and Timing), and they may not explicitly ask for “navigation resilience”. But the expectation is there nonetheless: in the questions they raise, the incident reporting they request, and the operational standards they increasingly assume are in place. The reason is straightforward: when positioning fails at sea, it becomes a security issue whether anyone labels it that way or not.
Security Has Expanded Beyond the Physical
The biggest misconception in maritime security right now is thinking this is a niche technical issue, something for bridge teams, electronics specialists, or a ship’s IT provider, when in practice, it has become a frontline operational risk.
GNSS disruption, jamming, and spoofing are no longer rare anomalies confined to active conflict zones. Independent analysis by C4ADS has documented widespread maritime spoofing events affecting thousands of vessels, particularly in the Black Sea and the Middle East. Subsequent advisories from the U.S. Coast Guard Navigation Center (NAVCEN) and UK Maritime Trade Operations (UKMTO) have continued to warn of GPS interference affecting commercial traffic in multiple regions.
When a vessel loses trustworthy position and timing, the impact cascades fast. Routing decisions become uncertain, safety margins shrink, bridge teams hesitate, and in high consequence waters, uncertainty becomes vulnerability. That’s why navigation resilience is moving into the security deliverables category. Not because it’s a buzzword, but because the outcomes are security outcomes – the ability to maintain control, continuity, and confidence in the vessel’s movements. And, as shipping companies continue to lean on third party providers to manage risk, the responsibility is naturally shifting to the people who already own the security mission.
Merchant Shipping Is Outsourcing Resilience, Not Just Risk
The International Maritime Organization (IMO) has formally recognized navigation systems as part of a vessel’s cyber risk surface. U.S. Department of Transportation reporting on Complementary PNT strategies has likewise acknowledged the vulnerability of civil GPS and the need for resilient alternatives. At the same time, the operational picture has become harder to ignore. From spoofed coordinates linked to tanker incidents, to cargo vessels disappearing from satellite tracking under jamming conditions, interference with positioning and navigation is now a live operational issue.
That has direct implications for maritime security. It is no longer enough for PMSCs to track piracy patterns and regional instability. They now have to understand electronic disruption, degraded communications, cyber-enabled interference, and deliberate manipulation of navigation systems. The threat landscape is no longer confined to the physical domain; it now extends into the systems vessels rely on to operate safely.

For shipping companies, the response is familiar. When risk grows faster than internal capacity, they outsource. First that meant physical protection. Then it meant intelligence and route advisory. Now it increasingly means outsourcing resilience, especially where failure has immediate operational consequences. Navigation is one of the clearest examples.
The New Scope of PMSCs
PMSCs are increasingly being drawn into questions that would once have remained strictly on the bridge:
- What happens if GNSS becomes unreliable mid-transit?
- How quickly can we detect spoofing versus simple signal loss?
- How do we keep the bridge team confident in the vessel’s position when the primary reference is compromised?
- What proof can we provide after the fact – to the owner, to insurers, to regulators, and to internal stakeholders – that the vessel maintained safe navigation?
These are no longer theoretical or hypothetical concerns and possibilities; they’re operational questions and sit directly inside the modern security mission. Marine insurers and P&I clubs such as Allianz and Gard have already published guidance highlighting navigation system vulnerabilities as emerging operational risks. The Nautical Institute’s Mariners’ Alerting and Reporting Scheme (MARS) has also captured incident reports reflecting confusion and degraded situational awareness linked to navigation system anomalies. In many cases, the crew onboard is highly competent but not equipped with the tools or the time to manage GNSS integrity issues in a repeatable way. But it’s not a training failure – it’s an equipment and process gap.
Why A-PNT Is Becoming the Navigational Standard
The real challenge in modern navigation is not only loss of signal, but loss of trust. In a disrupted environment, the greatest risk is often not that positioning disappears, but that it appears reliable when it is in fact wrong. That is what spoofing does, and it turns navigation failure into an operational and security problem.
That’s why A-PNT is becoming increasingly important. It’s often not a single product or platform, but a broader resilience approach: ensuring that positioning, navigation, and timing remain dependable and verifiable when GNSS is degraded, denied, or manipulated.
Solutions such as Iridium PNT sit within that broader picture. They offer an additional means of maintaining trusted PNT in operating environments where traditional GNSS may be vulnerable to interference.
For maritime operators, that is the real shift. A-PNT is becoming less of a specialist capability and more of an operational standard, because resilience in navigation is increasingly inseparable from resilience in the voyage itself.

Where RockFLEET Assured Fits into Modern Maritime Security
RockFLEET Assured, powered by Iridium PNT, enters the market at a moment when PMSCs are increasingly expected to provide resilience as part of secure fleet operations, not just protection from physical threats.
Designed specifically for maritime deployment, the marine-grade smart antenna delivers cryptographically authenticated positioning and an assured navigation reference for vessels operating in environments where GNSS integrity cannot be guaranteed. In practice, that means an independent source of trusted position data when GPS or other GNSS signals are degraded, denied, or manipulated.
Its value is operational as much as technical. By comparing GNSS inputs with Iridium PNT outputs, RockFLEET Assured helps bridge teams and shore-based personnel identify anomalies more quickly, detect possible spoofing or jamming, and respond with greater confidence. Event data can be logged and transmitted ashore, creating a defensible record for incident review, compliance documentation, or insurer scrutiny.

Just as importantly, it’s built for repeatable deployment at fleet level. The system is delivered as a single above-deck terminal, with mounting options to suit different vessel types and superstructure layouts, reducing the need for vessel-by-vessel customization. Its IP66-rated enclosure is designed for exposed marine conditions, and no below-deck electronics are required unless bridge view is selected.
Reporting is equally flexible. Through Iridium Messaging Transport (IMT), RockFLEET Assured supports configurable position updates and secure two way messaging between ship and shore, with reporting intervals tailored to different operational requirements. Integration with Ground Control’s Cloudloop platform enables centralized fleet visibility, while API connectivity supports incorporation into existing monitoring and security systems.
Optional bridge view functionality adds another practical advantage, allowing assured positioning data to be displayed alongside standard GNSS outputs. For crews, that provides a clearer visual reference during interference events and helps reduce hesitation when rapid navigational decisions are required.
For PMSCs, that makes RockFLEET Assured a practical way to embed navigation resilience into a broader security offering. Rather than treating disruption as a vague technical failure, it helps turn it into something observable, reportable, and manageable.

What Changes Operationally for PMSCs
PMSCs often operate under heightened expectations for compliance, documentation, and professionalism. Clients – corporate security teams, fleet operators, insurers, charterers – expect measurable capability, not procedural reassurance. Without A-PNT, disruption remains ambiguous. With it, disruption becomes detectable, documentable, and defensible. That shift strengthens operational reporting, reduces decision latency on the bridge, and improves client confidence. It becomes a deliverable in a security modeland part of how PMSCs define secure fleet operations in 2026 and beyond.
The Future of Maritime Security
The maritime security industry is not abandoning its roots: physical threats still exist, high-risk areas still demand proven experience, and human expertise still matters. But the center of gravity is shifting as electronic disruption, contested signal environments, and hybrid risk become normalized features of global shipping lanes. International policy bodies, insurers, and national governments have all acknowledged this reality in recent years.
The most forward-looking maritime security providers are therefore evolving from personnel-based security offerings to layered security and resilience platforms. They are expanding into technical advisory, electronic threat awareness, and operational continuity support. They are positioning themselves as secure fleet partners, not just voyage contractors, and A-PNT is one of the cleanest, most valuable additions to that stack.
The next era of maritime security will be defined by who can keep ships operating safely and confidently when the environment becomes contested physically, electronically, and operationally. Navigation resilience is becoming a security standard because disruption is becoming the norm, so for PMSCs responsible for secure fleet operations, this is the moment to lead. The companies that adopt assured A-PNT now through solutions like RockFLEET Assured will be the ones positioned to define what security means at sea over the coming years or more.
Trusted A-PNT For Navigational Certainty at Sea
For over 20 years, we’ve delivered resilient satellite solutions for remote connectivity and secure communications. We’re proud to support commercial shipping, offshore operators, and maritime security providers with dependable satellite connectivity and assured positioning capabilities designed for the realities of the modern maritime domain.
If you want to offer A-PNT solutions as part of the security strategy for your maritime clients, complete the form, or email hello@groundcontrol.com and we’ll reply within one working day.
Why A-PNT is the Future of Trusted Positioning for BVLOS Drone Operations
Global Navigation Satellite Systems (GNSS) such as GPS, Galileo, GLONASS, and BeiDou have driven navigation for Unmanned Aerial Vehicles (UAVs) for decades. These satellite signals provide critical positioning, navigation, and timing (PNT) data that inform core functions like waypoint navigation, path planning, dynamic obstacle avoidance, geofencing for airspace compliance, and failsafe behaviors such as Return to Home or auto landing. However, GNSS/GPS signals are inherently weak – designed to be received at the Earth’s surface from satellites tens of thousands of kilometers away – and as such, are vulnerable to interference, jamming, or deliberate PNT denial.
Particularly over conflict zones, but increasingly widespread, GNSS signals are being degraded, spoofed, or blocked, causing multipath errors and signal loss and leaving autonomous drones without reliable positioning or timing information. Reliance on GNSS alone subsequently becomes a single point of failure for safe, reliable and trusted and UAV operations.
This is why navigation resilience has become one of the most important technical and operational requirements for modern BVLOS UAV deployments, and why selecting the right navigation solution is no longer simply about accuracy, but about operational continuity, trust, and reliability when navigational conditions degrade.
In this blog, we’ll explore the satellite service that addresses GNSS/GPS overreliance, the onboard technology that delivers resilient UAV navigation in contested environments, and the key factors integrators should consider when choosing a navigation stack for BVLOS operations.
Continuity Challenges in Contested and Complex Environments
Studies on GNSS-denied navigation show that jamming can overwhelm genuine satellite frequencies, driving receivers into error or total loss of signal. Spoofing goes a step further by feeding convincing but false signals, tricking receivers into calculating an incorrect location and potentially sending autonomous systems off course. This isn’t theoretical – the mechanisms and impact of GNSS spoofing and jamming are well documented, with spoofing described as a more complex and deceptive threat than simple interference, because it actively misleads the navigator rather than just depriving it of data.
GNSS denial isn’t confined to military battlefields either. Complex civil environments present similar challenges. Urban canyons made of steel and glass can reflect, attenuate, and distort satellite signals. Industrial zones rife with electromagnetic activity can drown out weak satellite broadcasts. Remote farmlands, border regions, and mountainous terrain all produce signal shadows and multipath effects, and these are not edge cases; many operators encounter these conditions regularly.
Without trusted PNT, a drone’s ability to follow a flight plan, maintain orientation, and sense its environment becomes compromised. In military operations, this can mean the difference between mission success and failure when conducting reconnaissance, supply delivery, or coordinated swarm operations. In maritime environments far from land, relying solely on GNSS undermines situational awareness and safety. In these contested or degraded environments, drones that depend exclusively on GPS risk mission degradation, erratic navigation, or complete loss of control.
It’s worth noting, however, that when a UAV loses trusted PNT, it doesn’t necessarily lose the ability to fly. Rather, it loses confidence in where it is, and that uncertainty is enough to abort missions, degrade data quality, violate airspace restrictions, or erode operator trust. Without PNT, UAV missions fail not because the vehicle lacks propulsion or control, but because it cannot navigate with confidence. For BVLOS operations, this loss of confidence is especially critical. Unlike VLOS flights, BVLOS operations depend on automation, remote supervision, and regulatory compliance. A drone that cannot prove where it is – reliably and continuously – cannot safely remain in controlled airspace or operate near people, infrastructure, or other aircraft.
The Solution Beyond GPS
To address the vulnerabilities in GNSS/GPS, engineers and operators are turning to Assured Positioning, Navigation and Timing (A-PNT).
A-PNT represents a layered approach in which GNSS is complemented, and in some cases temporarily replaced, by alternative sources that can provide trusted PNT data in environments where GPS is unavailable or untrusted. One alternative A-PNT source is derived from Iridium, and broadcast from a constellation of Low Earth Orbit (LEO) satellites. Because these satellites orbit significantly closer to Earth than traditional GNSS satellites, the downlink signals are up to 1,000 times stronger and more resistant to jamming or obstruction.

What makes Iridium’s PNT particularly effective is also its hybrid operation. When GNSS signals are present and reliable, an A-PNT system can blend that positioning data with Iridium PNT to maximise accuracy. When GNSS fails or is compromised, the system can continue operating on the stronger, authenticated Iridium PNT signals alone, preserving continuity of service and trusted navigation. This redundancy is key for autonomous systems that cannot afford to lose their bearings due to interference or contested signals.
In addition, the Iridium PNT signal incorporates cryptographic authentication that enables receivers to verify the integrity of their navigation signals and reject spoofed or tampered data. Whether operating at sea, in urban canyons, or in warfare environments, A-PNT provides a resilient and secure source of position and timing that can help autonomous drones sustain operations when GNSS cannot be trusted.
Why Antenna Positioning Still Matters in GNSS-Denied Scenarios
Even before GNSS is intentionally denied, the physical realities of a UAV or drone’s design can degrade satellite reception. The placement and orientation of antennas determine how effectively a platform can see the sky and receive navigation signals.
Placement near high current electronics, motors, or carbon fiber structures can block signals and create multipath interference, both of which erode signal quality. In contested environments, where robust reception is already tenuous, such degradation only exacerbates the problem. Careful antenna placement – including optimal sky visibility, proper ground planes, and physical isolation from noisy subsystems – remains foundational to any navigation strategy that seeks resilience when GNSS signals are challenged or absent. Further, incorporating A-PNT sources into those antenna systems becomes essential to maintaining navigation and timing.
RockBLOCK APNT for Autonomous and UAV Platforms
One of the standout implementations of this A-PNT approach is RockBLOCK APNT – a rugged, self-contained satellite device designed to deliver Iridium PNT-based positioning data even in GNSS-denied environments. RockBLOCK APNT integrates both Iridium PNT and multi-constellation GNSS reception into a compact device suitable for integration with drones and other unmanned systems. By leveraging Iridium’s globally available, authenticated PNT signals, RockBLOCK APNT delivers a level of navigational assurance that GPS alone cannot provide.
For UAV manufacturers and integrators, A-PNT needs to be both practical and reliable. Built with an IP66-rated rugged enclosure, RockBLOCK APNT withstands harsh operational conditions across land and aerial deployments, making it suitable for military, industrial, and maritime applications where environmental stresses and contested RF conditions are common.
The design is also considerate of OEM deployment, featuring a compact form factor with low size, weight, and power (SWaP) requirements, and standard interfaces that simplify integration into existing navigation stacks. It is designed to be both resilient and flexible, supporting serial, USB-C, and Bluetooth connectivity, and easily configurable with common development tools.
Notably, the device also operates with twin antennas to optimize sky visibility and signal resilience according to the drone’s design. In addition to delivering trusted PNT data, RockBLOCK APNT also provides two way satellite messaging up to 100 KB, offering a valuable fallback communications channel when other links fail.

For UAVs and drones operating BVLOS, the ability to compare GNSS and Iridium PNT data streams is a powerful tool for detecting anomalies indicative of interference or spoofing. By validating position and timing against independent sources and reducing dependence on a single satellite navigation source, RockBLOCK APNT enhances navigational integrity and situational awareness. Operating on stronger Iridium PNT signals also expands the envelope of reliable navigation to areas where traditional GNSS geometry is poor or disrupted, such as high latitudes or deep urban corridors.
Future-Proofing UAV Operations With A-PNT
GPS and GNSS have served the world of autonomous navigation well, but they were never designed with modern contested environments in mind. As threats evolve and operations push into regions of intentional interference or obstructed signal conditions, autonomous systems must adapt.
If GNSS is your only source of PNT, your unmanned platform has a single point of failure. In environments where GNSS signals can be jammed, manipulated, or unavailable, this reliance represents a significant operational liability.
A-PNT, powered by strong alternative signals such as Iridium PNT and delivered through devices like RockBLOCK APNT, offers a practical, resilient path forward. By blending multiple navigation sources and validating integrity through authenticated signals, autonomous drones can maintain reliable PNT and continue operating effectively, even when GPS fails.
RockBLOCK APNT delivers UAVs a trusted, independent, and resilient source of positioning, navigation and timing. This enables UAVs to maintain autonomy under interference, preserve mission continuity, protect critical timing and coordination functions, and operate globally with confidence.
Trusted A-PNT For Resilient UAV and Drone Operations
Ground Control brings more than 20 years of experience delivering resilient satellite solutions for remote connectivity and secure communications. We provide expert guidance on deploying the right mix of A-PNT capabilities and reliable satellite connectivity options to ensure trusted positioning, navigation, and for autonomous drones, aircraft and UAVs.
Complete the form, or email hello@groundcontrol.com and we’ll reply within one working day.
The True Cost of GPS Denial and the Case for A-PNT Resilience
GPS is so embedded in modern defense operations, commercial shipping, and aviation that it often fades into the background. It is assumed to be constant, accurate, and available, but GPS is not always guaranteed. It can be denied, degraded, jammed, or spoofed, and when that happens, the consequences are rarely limited to navigation problems; the expense can also be paramount.
Globally, over the last few years, there has been an alarming rise in deliberate GPS jamming and spoofing incidents. In 2024, over 1,000 commercial flights a day were affected by GPS spoofing, and in the Baltic Sea and Gulf of Finland, reports of jamming and spoofing incidents in 2025 increased by 127% in a three-month period.
In August 2025, the aircraft carrying European Commission President Ursula von der Leyen experienced GPS jamming over Bulgaria and required backup navigation to land safely. Subsequently, a joint statement from the International Maritime Organization (IMO), International Civil Aviation Organization (ICAO), and the International Telecommunication Union (ITU) warned about harmful interference, including jamming and spoofing, and called for action by Member States to strengthen the resilience of navigation, positioning, and timing systems.
As GNSS and GPS jamming and spoofing become more prevalent, organizations are increasingly operating blind and exposed to cascading costs relating to service disruption, safety hazards, regulatory non-compliance and reputational damage. This has accelerated the case for Assured Positioning, Navigation and Timing (A-PNT), a resilient, layered approach to sustaining trusted timing and positioning when GPS is disrupted. A-PNT can combine multiple independent sources and techniques (satellite, terrestrial, and onboard) to preserve continuity and confidence. Without A-PNT, organizations don’t just lose a signal, they lose confidence, and when confidence disappears, operations slow, costs increase, schedules unravel, and risk rises.
This blog examines the impact of GPS denial, its associated financial implications, and why A-PNT is increasingly viewed as an essential tool for military and defense users, merchant fleets, and aviators who need to maintain safe and predictable movements even when GPS is unavailable.
Uncertainty is a Cost Center
The business case for A-PNT becomes clear when you treat GPS denial as a cost center. Every minute spent slowing down, verifying, rerouting, holding, or diverting is money. Every missed slot, aborted mission, or extended transit is money. Every safety incident, near miss, or compliance failure can be catastrophic in terms of money. If a military unit has to slow or hold position while verifying navigation integrity, it may be exposed longer than planned.
If a merchant ship loses reliable position awareness, it may reroute unnecessarily, increasing transit time and risk. If an unmanned system can’t maintain navigation confidence, it may be pulled from the mission entirely. Every one of these outcomes has a financial expression, whether that’s wasted flight hours, increased maintenance burden, higher fuel usage, or the opportunity cost of assets not being where they need to be. A-PNT reduces these losses by keeping operations predictable under pressure.
Impact of GNSS Degradation in Unmanned Operations
For unmanned operators, GNSS loss or manipulation can translate into constraints and costs within minutes, because GNSS often underpins not just navigation, but also autonomy behaviors (e.g., route keeping, loiter/hold, return to home logic), geofencing and time synchronised data capture. As interference has risen in multiple regions, aviation and maritime safety bodies have issued increasingly prominent warnings about GNSS jamming/spoofing and the need to plan for disrupted environments.
When GNSS is degraded or unavailable, unmanned systems typically shift into more conservative modes: tighter operating areas, lower speeds, increased standoff distances, more manual oversight, or mission aborts. In UAV operations, especially BVLOS and infrastructure / corridor missions, GNSS degradation can also force a reversion to non-GNSS navigation sources (inertial, vision, map matching, etc.) and raise integrity management requirements, because the problem isn’t only position error, it’s whether the system can trust its own PNT well enough to continue safely.
The cost stack for unmanned operations then shows up as lost mission time, rescheduling and re-flight costs, additional personnel oversight, payload / data re-collection, and, at the sharp end, asset loss or third party risk if interference causes navigation faults. In maritime-adjacent unmanned work (USVs and vessels supporting unmanned operations), the same GNSS interference trend is being treated as a growing safety risk, with advisories urging operators to anticipate disruption, report incidents, and implement mitigations.
In time sensitive logistics and security contexts, the margin for error tightens further. Small GNSS-driven slips can break delivery windows, compromise chain of custody or data integrity, and degrade service-level commitments, while in defence and critical infrastructure missions, GNSS degradation becomes a mission assurance and deconfliction risk in contested or degraded environments. That’s why the case for layered A-PNT resilience is strengthening across unmanned platforms: not as a single replacement signal, but as an architecture that preserves confidence through diversity, detection, and graceful degradation.
The Price of Losing Trusted Positioning at Sea
For shipping and merchant fleets, predictable timing is often as valuable as speed. But the most damaging failure mode isn’t always GPS disappears; it’s when crews can’t trust position, course, or time because GNSS is being jammed or spoofed. Industry and security advisories have highlighted corroborated reports of GPS interference affecting vessels in key waterways, including the Strait of Hormuz, and recommend mitigations for navigation planning.
When GNSS integrity is in doubt, ships don’t simply carry on as normal: operators typically respond by increasing watchkeeping, leaning harder on radar and visual fixes, slowing down, widening margins, delaying pilotage/approaches, and sometimes holding or anchoring until confidence returns.
In mid June 2025, reporting and analysis around the Strait of Hormuz described widespread GPS interference and its safety implications, including a high profile collision where erratic positioning signals were observed beforehand and experts suspected jamming/spoofing as a contributing factor (even if causality remains under investigation).
Operational disruption like this cascades quickly into cost: missed berth windows, re-booking and port side fees, delayed cargo availability, and schedule breakage across liner and charterparty commitments. At the same time, GNSS interference elevates high severity safety risk – groundings, collisions, cargo damage – where a single incident can dwarf the costs of multiple disrupted transits.

A single collision or contact event driven by GNSS interference can expose shipowners to major third party liabilities, from damage to other vessels and port infrastructure, to cargo loss, pollution response, medical and repatriation costs, and legal defense. These liabilities are typically handled through Protection & Indemnity (P&I) insurance; the mutual liability cover marine operators carry to protect against such claims.
But in a GPS-denied incident, the challenge is not only the size of the exposure, it’s the evidentiary uncertainty. P&I outcomes and recoveries can hinge on being able to demonstrate where the vessel was, what maneuvers were made, and whether it complied with COLREGs, local routing requirements, and port directions at the time of the event. If GNSS interference corrupts, removes, or calls into question the position record, investigations can become slower and more contested, fault can be harder to rebut, and legal costs can escalate, delaying settlement and, in some cases, reducing recoveries.
Beyond P&I liability, GNSS disruption can also show up in war risk pricing, because the same contested corridors where kinetic threats rise are often the places where electronic warfare (including GNSS jamming and spoofing) is part of the operating picture. In the London market, the Joint War Committee (JWC) publishes Listed Areas of perceived enhanced risk, which can trigger additional premium requirements depending on cover and voyage. In periods of heightened Red Sea risk, reported additional war risk pricing rose sharply, moving from low fractions of hull value to figures around the 0.5%-0.7% range by late 2023, with some quotes reported as high as ~1% in peak conditions. For a high-value vessel, that translates into hundreds of thousands to over a million dollars for a single transit before knock on costs are counted.
That’s why A-PNT isn’t just a technical upgrade; it’s a mission/operations enabler. The goal is to retain a trusted position and timing solution even when GNSS is denied, jammed, or spoofed, so crews and operators can keep moving safely with managed risk, rather than defaulting to delay, disruption, or avoidable exposure when the RF environment turns hostile.
Reputation Cost
There’s also a reputational dimension that doesn’t often present itself as a cost center for the cost of GPS denial. Defense organizations are measured by readiness and reliability, commercial fleets are measured by service performance and operational professionalism, and aviation operators are measured by safety and predictability. When GPS denial causes repeated disruptions, customers, partners, and leadership can begin to ask harder questions. The organizations that can demonstrate resilience; the ones that can say “GPS went down and we continued safely and predictably”, are the ones that win trust and contracts.
Resilience Through an Alternative Satellite Network
Iridium PNT delivers a key advantage in degraded GPS environments, chiefly due to signal strength at the receiver. Because the Iridium constellation operates in Low Earth Orbit (LEO) – roughly 25× closer than GNSS satellites in Medium Earth Orbit (MEO) – its downlink can be received at ground level at around 1,000 times (≈30 dB) stronger than traditional GNSS signals.
That higher received power materially improves resilience in the real world: it raises the bar for interference, supports operation in more obstructed environments, and helps sustain trusted timing and position when GNSS is being jammed or manipulated. It complements GPS / GNSS as part of a layered A-PNT approach, restoring operational confidence by providing an independent, authenticated PNT path when GNSS integrity can’t be assumed.

For organizations that require positioning, navigation and timing solutions that can be deployed quickly, the RockBLOCK APNT and RockFLEET Assured devices provide a path to delivering a resilient solution by encapsulating Iridium PNT, without redesigning an entire platform. The devices are built around the reality that fleets and squadrons don’t have the luxury of multi-year integration timelines when the threat – and cost – of GPS jamming, spoofing and denial is already here.
A-PNT for Vehicles & Drones
RockBLOCK APNT is a rugged, self-contained satellite device that leverages Iridium PNT signals to deliver resilient positioning, navigation, and timing. Its form factor is well suited to mounted vehicle platforms, unmanned systems, and mobile assets where trusted position and timing are mission critical.
Housed in a compact, IP66-rated aluminum enclosure, RockBLOCK APNT is engineered to withstand harsh operational conditions across land and aerial deployments. Its low power consumption (under 200 mW idle) makes it suitable for persistent, remote, or battery powered platforms, including unmanned ground and aerial vehicles.
By combining a robust physical design with Iridium’s globally available, authenticated signals, RockBLOCK APNT helps maintain navigational integrity and timing continuity even when GPS cannot be trusted.

A-PNT for Maritime
RockFLEET Assured integrates Iridium’s PNT service into a rugged, compact maritime solution designed to perform under real world navigational stress. Instead of relying solely on open GNSS signals, RockFLEET Assured outputs A-PNT-derived position and time in standard NMEA format, with configurable integrity monitoring and time difference checks to help identify anomalous conditions, supporting operations with more trustworthy navigation data when GNSS can’t be relied upon.
Commercial ships transiting spoofing hotspots can maintain position awareness even as GNSS degrades, supporting safe and confident bridge operations. Naval platforms operating in electronic warfare environments retain the dependable timing and navigation required for mission coordination. And because integrity is monitored and anomalies are flagged, operators can respond early – before bad PNT propagates into bad decisions.

Protecting Time, Revenue, and Reputation
Organizations often underestimate the financial impact of GPS denial because it is rarely captured as a single line item or cost center. Instead, it appears as scattered costs that add up rapidly: additional fuel consumption, extra days at sea, schedule recovery actions, personnel overtime, unplanned port charges, and operational inefficiencies that ripple through multiple departments.
A-PNT is the difference between navigating uncertainty and being governed by it. It reduces the financial impact of delays caused by GPS denial, protects schedules from such cascading disruption, and strengthens safety margins in environments where navigation integrity cannot be assumed.
RockBLOCK APNT and RockFLEET Assured are rugged, reliable, and deployable A-PNT solutions that support continuity of operations by enabling resilient PNT in the field and at sea. For commercial shipping operators, this means more stable ETAs, reduced exposure to costly port and network disruptions and lower AWRPs. For defense operators, it means maintaining tempo, reducing mission risk, and preserving synchronization across assets and units. For drone operators, it means improved navigation integrity in degraded environments and fewer operational compromises when GPS is unreliable. RockBLOCK APNT and RockFLEET Assured exist for the moments when GPS goes dark and the mission, schedule, or flight still has to continue.
Trusted A-PNT Expertise To Reduce The Cost Of GPS Denial
Ground Control brings more than 20 years of experience delivering resilient satellite solutions for unmanned, maritime and critical communications. We understand that no two vessels, convoys, or operating environments are the same, which is why we provide expert guidance on deploying the right mix of A-PNT capabilities and reliable satellite connectivity options to ensure trusted positioning, navigation, and timing anywhere in the world.
Complete the form, or email hello@groundcontrol.com and we’ll reply within one working day.
How Iridium PNT Can Transform War Risk Insurance for Merchant Shipping
Every few years, a disruptive technology emerges quietly but ultimately reshapes entire sectors. Today, Assured Positioning, Navigation, and Timing (A-PNT) is gaining momentum, and Iridium’s Low Earth Orbit (LEO) PNT signal is one prominent space-based approach.
While most discussions around A-PNT focus on navigation, defense, or autonomous systems, one industry poised to benefit the most in financial significance is vessel insurance.
Shipowners and insurers face increasing pressure from unpredictable geopolitical risks, particularly in war-prone regions. The reliability of vessel position data has become a critical factor for insurers, who need to accurately assess risk in order to price policies and manage claims.
A-PNT technologies offer a solution to this long-standing challenge by providing trusted, tamper resistant, and independent positional data, which has the potential to transform how insurers evaluate and underwrite maritime risk.

The War Risk Insurance Market is Under Pressure
War risk insurance premiums have skyrocketed in the past two years, reflecting heightened threats in key shipping corridors and merchant vessels navigating unpredictable geopolitical environments.
These premiums, known as Additional War Risk Premiums (AWRPs), are applied on top of normal insurance cover whenever a vessel enters a high risk “Listed Area” defined by the London insurance market’s Joint War Committee (JWC). These surcharges can represent hundreds of thousands, and in some cases millions, of dollars per voyage, dramatically increasing operational costs for carriers.
One example is the Red Sea crisis caused by Houthi attacks in late 2023 and 2024. During this period, war risk premiums for a typical seven day transit of the Red Sea and Bab al-Mandab Strait surged from a nominal 0.05 percent to between 0.4 and 1.0 percent of the vessel’s hull and machinery value.
For a new high value container ship valued at approximately $150 million, this translates into an additional cost of roughly $665,000 per transit. Similarly, a Large Range 2 tanker valued at $105 million faces surcharges of around $420,000, while Very Large Crude Carriers (VLCCs) with insured values near $100 million could see premiums reach $1-2 million for a single high risk seven day transit. These extreme costs, combined with the actual risks of attack, forced major carriers such as Maersk and Hapag-Lloyd to reroute around the Cape of Good Hope, adding 10 to 14 days to their journey and significant fuel costs.
The Black Sea, affected by the Russia-Ukraine conflict, represents another hotspot where war risk insurance costs have surged. The conflict has had significant impact on the grain export corridor. After Russian strikes on foreign vessels, war risk premiums reportedly increased by approximately $125,000 per voyage for a $50 million vessel. In response, insurers collaborated with the United Nations to create specialized grain corridor insurance solutions, enabling essential exports to continue despite elevated risk.
While exact invoices remain private, publicly available market data shows that transiting a war risk area can add a substantial percentage of a vessel’s value to the cost of a short transit. Insurers desperately need reliable, tamper-proof positional data to assess risk, and ships need better protection from spoofing and GNSS interference. That’s where Iridium PNT becomes invaluable.
Where Iridium PNT Fits In
Current methods for tracking vessels include AIS (Automatic Identification System), radar, and GNSS-based location tracking. However, each of these systems has limitations. AIS data can be spoofed, turned off, or manipulated. GNSS signals are vulnerable to jamming or spoofing, especially in conflict zones, and radar coverage is generally limited to coastal regions, leaving open ocean transits less secure. These limitations create blind spots between reported and actual vessel positions, increasing both operational and financial risk.
Iridium PNT addresses these challenges directly. By leveraging the global coverage of Iridium’s Low Earth Orbit (LEO) satellite constellation, Iridium PNT’s broadcast signal is up to 1,000 times stronger than GPS and transmitted from satellites 25 times closer to Earth. This makes it far more resilient to interference and reliable even when GNSS becomes unavailable.

Why Merchant Shipping Needs A-PNT
The modern maritime industry operates under increasing levels of risk and uncertainty. War risk premiums are fluctuating dramatically, GNSS vulnerabilities are increasing, and traditional tracking solutions leave critical blind spots. In a world where a single transit can cost $500k to $2 million in extra insurance, any technology that enhances trust and reduces risk has immediate economic value.
For shipowners, A-PNT is more than a navigation enhancement. The technology is a financial and operational safeguard, enabling vessels to demonstrate the integrity of their movements and providing insurers with verifiable data that can reduce positional uncertainty. This can translate directly into lower war risk premiums as carriers can prove their routes and positions without ambiguity. By offering immutable, timestamped movement logs that are resistant to spoofing or tampering, A-PNT enables maritime insurers to price risk with confidence and operators avoid unnecessary disputes.
Beyond insurance savings, A-PNT also enhances safety and operational resilience. In high-threat areas, accurate, verified location and timing information is essential for navigation, route optimization, and compliance with safety regulations. Fleet operations centers can maintain situational awareness, even under GNSS interference, while captains receive reliable guidance via A-PNT to avoid hazards or restricted zones. The combination of operational safety and financial prudence positions A-PNT as an essential tool for modern merchant shipping. Ultimately, if ships can prove their track, timing, and location with high integrity – independently of GNSS spoofing and jamming – insurers can price risk with confidence.
Bringing Iridium PNT to the Bridge with RockFLEET Assured
RockFLEET Assured harnesses Iridium’s PNT service into a rugged, compact maritime solution built for real-world navigational pressures. It provides an independent source of positioning and timing when GPS/GNSS is jammed, degraded, or spoofed. Rather than relying solely on open GNSS signals, RockFLEET Assured can output A-PNT-derived position/time in standard NMEA format and includes configurable integrity and time difference checks to help detect anomalous conditions, supporting operations based on more reliable information when GNSS can’t be trusted.
The combination of its resilient architecture and practical engineering makes RockFLEET Assured a strong choice for vessels facing GPS-denied conditions and AWRPs. Cargo ships transiting spoofing hotspots can maintain position awareness even when GNSS becomes unreliable, helping bridge teams maintain safe routing. Naval vessels operating amid electronic warfare retain dependable timing and navigation essential for mission coordination. And unmanned surface vessels benefit from uninterrupted PNT in high latitude regions where GNSS performance can be challenged.
By combining Iridium’s PNT service with RockFLEET Assured’s maritime-ready integration and onboard monitoring features, RockFLEET Assured provides a trusted positioning capability to mitigate the threats that contribute to rising war risk premiums in regions like the Red Sea and Black Sea.

Reliable Navigation for Insurers and Shipowners
With millions at stake in AWRPs alone, Iridium PNT provides a new level of assurance for both insurers and vessel operators. For insurers, the technology reduces exposure to spoofing, improves positioning reliability, and enables more accurate data driven risk pricing. For shipowners and operators, APNT can lower war risk premiums, improve compliance, enhance safety, and ensure operational continuity in high-risk zones.
As the geopolitical risks continue to grow and GNSS vulnerabilities become more frequent, A-PNT is emerging not only as a navigation tool but as a business-critical tracking asset. It allows maritime stakeholders to operate with confidence, knowing that the positional data underpinning insurance decisions, operational planning, and safety compliance is reliable.
In this context, Iridium PNT and RockFLEET Assured represent a transformative solution, providing trusted, validated, and resilient positioning, navigation and timing data that benefits insurers, shipowners, and the broader shipping ecosystem. For stakeholders aiming to reduce financial exposure, enhance safety, and navigate conflict zones with confidence, RockBLOCK APNT is a reliable solution. By enabling a verifiable “source of truth” for vessel positioning, RockFLEET Assured enables more accurate, reliable and cost-effective maritime war risk insurance assessment for modern maritime operations.
Trusted A-PNT Expertise for Resilient Maritime Operations
Ground Control brings more than 20 years of experience delivering resilient satellite solutions for maritime and critical communications. We understand that no two vessels, fleets, or operating environments are the same, which is why we provide expert guidance on deploying the right mix of A-PNT capabilities and reliable satellite connectivity options to ensure trusted positioning, navigation, and timing at sea.
Complete the form, or email hello@groundcontrol.com and we’ll reply within one working day.
Top GNSS/GPS-Denial Questions Answered
Modern military, aviation, and maritime operations are critically dependent on precise Positioning, Navigation, and Timing (PNT) data. For decades, the Global Positioning System (GPS) and other Global Navigation Satellite Systems (GNSS) have served as the backbone of these capabilities, enabling everything from aircraft navigation and drone guidance to vessel tracking and synchronized global communications. However, as GPS denial and deception events become more frequent and geographically widespread, the need for resilient, assured PNT (A-PNT) solutions has become urgent. Ensuring operational continuity requires a clear understanding of the causes of GNSS disruption, who is most affected, how navigation can be sustained without it, and how technologies such as A-PNT can provide protection and redundancy.
The following GPS/GNSS-denial questions outline the key dimensions of this challenge: the sources of GPS disruption, the sectors and regions most exposed, operational fallback procedures, and the A-PNT technologies and strategies designed to safeguard navigation and timing in an increasingly contested GPS environment.
Q1. What Causes GPS Disruption?
Disruption can arise from unintentional interference, deliberate hostile actions, or natural environmental factors; all of which can degrade, deny, or corrupt the signal in ways that directly impact mission assurance and operational safety.
Unintentional interference remains a common source of disruption, particularly in congested environments, like major shipping ports, airspace hubs, and coastal regions. Overpowered or poorly shielded radio frequency transmitters, such as cellular base stations, radar systems, or satellite uplinks, can unintentionally saturate or desensitize GNSS receivers. Faulty amplifiers, including “personal privacy devices” (PPDs) used illegally in vehicles to block tracking, also generate wideband noise that can overwhelm nearby receivers.
Intentional interference, including jamming and spoofing, poses a more severe and rapidly escalating threat. In the military domain, jamming may occur during electronic warfare or combat operations. Criminal organizations also exploit GPS and GNSS vulnerabilities for illicit purposes such as cargo theft, illegal fishing, or sanctions evasion using low cost jammers and spoofers to conceal location or manipulate tracking data. In aviation and maritime operations, such interference can mislead autopilot systems, distort route data, and undermine collision avoidance and surveillance systems like ADS-B and AIS, potentially leading to incidents that pose a threat to life.
Environmental and natural factors further complicate GPS reliability. Solar flares and ionospheric disturbances can alter signal transmission, particularly at high latitudes or during periods of intense space weather, resulting in signal delays or complete loss of lock. Multipath reflections from large metallic structures, such as port cranes, vessel superstructures, or urban skyscrapers, can also distort signals and create false positional data. These effects are particularly acute in confined environments like harbors or dense airspace corridors, where reflected signals can be mistaken for valid GPS information.
Detection and characterization of GPS/GNSS disruption requires a combination of technical and procedural measures. RF power monitoring and direction finding equipment can help locate the source of interference, while incident mapping and space weather alerts support broader situational awareness. Crowdsourced interference reporting and data sharing between civil and military authorities enhance detection coverage and enable trend analysis across regions.
Q2. Who is Most Affected, and Where?
GPS and GNSS disruption has a disproportionate impact on sectors that rely on precise navigation and timing. In aviation, aircraft operating near conflict zones or at high latitudes are particularly vulnerable, with disruptions threatening precision approaches and timing synchronization. In the maritime sector, interference often concentrates along high risk regions with geopolitical tensions, including the Black Sea, Baltic, Eastern Mediterranean, and Persian Gulf – areas where dynamic positioning systems rely heavily on GPS and GNSS inputs.
In aviation, large airliners, business jets, and unmanned systems operating near conflict zones or at polar latitudes are especially exposed. In those corridors, loss or distortion of GPS during approaches or in cruise phases can degrade precision approach capabilities and force reliance on limited backup navigation systems. The aviation industry has already documented multiple spoofing and jamming events, with airlines reporting up to 1,500 daily spoofing incidents in airspace near hotspots like Israel, Lebanon, and Russia by August last year. In some cases, flights have been diverted or prevented from operating safely when GPS was degraded, and civilian aircraft have even been misled toward foreign airspace boundaries by spoofed signals in the Middle East.
In the maritime domain, the impact is acute along major shipping corridors and in regions already identified as interference hotspots. The Black Sea and Baltic Sea remain among the earliest and most persistent trouble zones, but interference has now spread to the Eastern Mediterranean, Persian Gulf, Red Sea, and other high traffic zones. In the second quarter of 2025, GPSPATRON reported that more than 10,000 vessels were affected by GNSS interference – an eightfold increase compared with the previous quarter. The report highlights both a real escalation in jamming and spoofing activity and an improvement in reporting systems across the maritime domain.
From a geographic perspective, “urban canyon” environments – major cities like London, Shanghai, Los Angeles – face a different, localized risk: multipath distortion and spoofing attempts exploiting signal reflections. In addition, there has been an uptick in inland interference reports, especially near major airports and ports, which has been attributed to illicit jammers in vehicles or on-ground emitters aiming to mask tracking.
Through enhanced incident reporting and sharing to understand which domains, vessels, aircraft, and infrastructure are most at risk, and where interference is currently the most concentrated, decision makers can prioritize surveillance assets, including radio frequency monitors, and deploy resilient PNT systems in high risk zones first, where vulnerability is highest.
Q3. How do Pilots, Mariners, and Military Personnel Navigate Without GPS?
In aviation, when GPS is unavailable, aircraft revert to more traditional navigation systems and navigation aids that must be maintained as essential backups. The backbone is the Inertial Reference System (IRS) and Inertial Navigation System (INS), which uses accelerometers and gyroscopes to continuously estimate position, velocity, and attitude. However, inertial systems suffer from drift – small sensor errors accumulate over time. To constrain that drift, pilots use periodic corrections from ground-based radio aids such as DME (Distance Measuring Equipment), VOR (VHF Omnidirectional Range), or radar updates from Air Traffic Control. When GPS integrity is lost, pilots may revert to conventional airways and non-GNSS instrument procedures, fly under visual flight rules if weather allows, or rely on approaches guided by the Instrument Landing System (ILS), NDB (Non-Directional Beacon), or local ground-based navigation aids. The FAA explicitly retains a VOR MON (Minimum Operational Network) concept to ensure aircraft can navigate via conventional VOR paths during GPS outages.
In maritime and offshore operations, GNSS denial is a severe vulnerability, particularly for dynamic positioning vessels and precise stationkeeping tasks, so ships rely on a suite of fallback systems. A gyrocompass, Doppler log, and radar-bearing fixes provide coarse navigation and heading references in coastal waters. Electronic Chart Display and Information Systems (ECDIS) allow manual plotting of fixes, and in more extended open ocean transits, celestial navigation or celestial fixes remain usable (albeit with skill). Some operators are evaluating the revival of terrestrial radio systems like eLORAN, which transmit low frequency signals over land that are much harder to jam and can serve as a GNSS backup in restricted regions.
For military operations in contested or GPS-denied environments, reliance on GNSS is particularly fragile, so hybrid navigation is essential. The U.S. Army has actively pursued pseudolite networks (ground-based “pseudo-satellites”) to preserve position information when GPS is denied. Pseudolites broadcast local ranging signals that, when integrated with an INS, give troops a reliable local positioning layer with far higher received power than spaceborne signals and therefore much better resistance to jamming at the tactical scale.
These alternative methods, however, are not without vulnerabilities or trade-offs. Inertial systems drift and must be regularly corrected; radio aids can be jammed, degraded, or decommissioned, vision-based systems fail in low visibility or featureless terrain, and acoustic or pseudolite systems have limited coverage or require infrastructure. This is why cross-training crews in traditional navigation techniques, sensor fusion architectures, and frequent calibration of INS and navigation sensors remains essential. Maintaining up to date navigation charts, ground aids, and fallback databases all help to ensure operational continuity when GNSS is degraded or denied.
Q4. What’s A-PNT, and How Does it Compare to GPS?

GPS and GNSS signals originate from satellites orbiting over 20,000 kilometers above Earth (in Medium Earth Orbit). The signals received at ground level are weaker, more easily disrupted or imitated by stronger, locally generated transmissions. A-PNT is designed to provide resilient, assured PNT when GPS or other GNSS signals are degraded, denied, or spoofed. GPS, while globally available and highly accurate under nominal conditions, is inherently vulnerable because its space-based signals are extremely weak and susceptible to jamming, spoofing, or interference from natural and environmental factors.
Iridium’s Positioning, Navigation and Timing service, Iridium PNT, is made up of a constellation of 66 Low Earth Orbit (LEO) satellites, which provide overlapping global coverage, including the polar regions. Unlike GNSS satellites in Medium Earth Orbit (MEO), Iridium satellites transmit PNT signals that are approximately 1,000 times stronger than GPS signals, making A-PNT particularly valuable in urban canyons, indoor environments, and other challenging conditions where GNSS signals may be obstructed.
Q5. How Is Iridium PNT Improving Navigational Resilience for GPS-denied Territories?
For military and security users, this shift offers critical operational advantages. LEO-PNT services delivered via the Iridium constellation provide encrypted and regionally tailored positioning, navigation, and timing data that can penetrate indoors, under canopy, or through moderate jamming. Iridium’s PNT service leverages Iridium’s 66-satellite global mesh operating in the L-band, distinct from GPS frequencies, making it far harder to disrupt with conventional jamming equipment. Because the Iridium system is already operational and uses cross-linked satellites for global coverage, it provides real time assured timing and location integrity even in contested or denied regions such as the Arctic, the Indo-Pacific, or urban RF-dense zones.

Satellite proximity to the Earth and signal strength alone, however, are not enough to secure PNT. Thus, the Iridium PNT service also incorporates cryptographic authentication to protect against spoofing and tampering. Every navigation and timing message is digitally signed, and receiving devices verify the integrity of those signatures before using the data. Unauthorized or falsified signals are rejected, ensuring that systems operate only on trusted information, delivering a far more robust and resilient service than GPS.
For commercial shipping and aviation, these LEO-based services introduce an accessible layer of resilience. In hybrid navigation, Iridium PNT works alongside GNSS and INS, enabling devices such as RockFLEET Assured to seamlessly shift or blend inputs as signal conditions change. In maritime environments, where GPS spoofing has been documented in the Black Sea and Eastern Mediterranean, Iridium-based A-PNT can sustain dynamic positioning operations. Similarly, aviation operators can use A-PNT to maintain flight management system synchronization and prevent false positional data from compromising navigation displays.
In practice, A-PNT serves as a critical additional layer of navigation for military, maritime, and aviation operations, allowing personnel, aircraft, ships, and unmanned systems to maintain mission continuity when GNSS is compromised. The resilient and secure design of A-PNT provides operational assurance, mitigating the single point vulnerabilities of space-based GNSS and GPS navigation, and is increasingly becoming recognized for resilient navigational planning in both defense and commercial sectors.
Q. 6 Are There Civilian-grade Alternatives to GPS?
Satellite A-PNT (Global, Operational Today)
Iridium’s PNT service is the only commercially available, satellite-delivered A-PNT service today. It rides on Iridium’s cross-linked LEO constellation to deliver robust time and location that complements GNSS and works indoors/urban canyons with much higher received power than MEO GNSS. It’s in service now across critical infrastructure timing and is being integrated with avionics and INS for navigation resilience. In a layered architecture, receivers blend or fail over between GNSS, inertial sensors and Iridium PNT to maintain continuity when GNSS is degraded or spoofed (this behavior is implemented by the receiving system; Iridium PNT is the alternative signal).
More GNSS ≠ an “Alternative,” But it Adds Diversity
Galileo now offers OSNMA (operational since 24 July 2025) to authenticate navigation messages and harden against spoofing. Helpful, but it doesn’t solve jamming or deep attenuation, because it’s still a MEO GNSS signal.
GLONASS, BeiDou, QZSS, NavIC add constellation diversity and regional coverage, improving availability and geometry. They still share core GNSS vulnerabilities (low received power, jamming/occlusion, multipath), so they’re complements, not true A-PNT alternatives. The need for non-GNSS layers is a key theme in recent policy/industry work.
Terrestrial A-PNT (Promising, But Deployment-dependent)
eLoran (LF terrestrial) delivers strong, hard to jam signals and good timing/positioning potential where networks exist. Roll-outs remain national/project-based (e.g., UK market engagement and MOD work on deployable eLoran), so coverage is not yet ubiquitous.
Emerging LEO PNT (Pre-commercial Navigation)
Several startups are flight-testing LEO PNT and demonstrating receivers, but broad commercial navigation services are still in demonstration/early rollout, not widely available to civilians today. They underscore the momentum toward frequency/orbit diversity, but Iridium PNT is the operational option right now.
For civilian users who need assured PNT today, the practical, globally available satellite alternative layer is Iridium’s PNT service, best used in a hybrid stack alongside GNSS and inertial sensors. Additional GNSS constellations and OSNMA improve resilience to spoofing, while eLoran and emerging LEO PNT add promising diversity where deployed, but they don’t replace the need for a satellite A-PNT layer like Iridium PNT in 2025/6.
Q7. What are the Early Warning Signs of GNSS Interference?
Early warning signs of GNSS interference are critical for maintaining operational safety across military, aviation, and maritime platforms. Onboard receivers may show a sudden loss of satellite lock, unexpected position or time jumps, or RAIM/integrity alerts in aircraft, all of which indicate potential jamming or spoofing. Unusually high or low signal-to-noise ratios, discrepancies between redundant receivers, or inconsistencies with INS, radar, Doppler logs, or visual bearings, or an Iridium PNT feed, are additional red flags.
In hybrid GNSS + INS + Iridium PNT architectures, the system can continuously compare GNSS against Iridium PNT’s independent time/location. Divergence beyond thresholds, for example, GNSS position drifting while STL-referenced dead reckoning and ship sensors remain coherent, provides early, positive indication of spoofing or severe degradation, enabling alarms, de-weighting of GNSS, or automatic failover/blending to maintain navigation continuity.
At the system level, automated controls may generate alerts: aircraft autopilots or ship dynamic positioning systems may show deviations from expected performance without an apparent environmental cause. Slowly drifting positions or erratic movements that do not match the platform’s true course may suggest spoofing rather than outright jamming. Environmental indicators, such as unusual RF activity in GNSS frequency bands or corroborating reports from nearby vessels or aircraft, can confirm the presence of interference.
Q8. What are the Operational Detection and Reporting Practices?
GNSS interference is usually first detected by anomalies in receiver behavior, a sudden loss of lock, abrupt jumps in reported position or time, unexplained offsets between redundant receivers and inconsistent cross-checks such as mismatches in radar or visual bearings. Passive indicators include a degraded number of satellites, rising noise floor on GNSS receivers, and unusual changes in signal-to-noise ratio. Spectrum analyzers or dedicated GNSS interference detectors will also show elevated power in GNSS bands or narrowband/discrete emitters.
For commercial ships and offshore platforms, once GPS and GNSS denial, jamming, or spoofing is detected, immediate shipboard actions should include switching to alternative position references, alerting the master and company operations center, logging precise UTC times and system messages, and retaining raw GNSS logs for later analysis. Reports must be made immediately to the national coastguard, port authorities and, where relevant, the NATO Shipping Center or regional maritime security centers. International bodies have urged states to set up reporting processes and share incident information to build enhanced situational awareness of GPS and GNSS jamming incidents.
Crews and air traffic control in civil aviation must treat suspected GNSS anomalies as safety events. Typical detection triggers are RAIM failures, unexpected position/time jumps, or receivers losing satellites simultaneously. Immediate mitigations include notifying Air Traffic Control, switching to approved non-GNSS procedures and filing a formal GPS Anomaly Report to the aviation authority. Regulators recommend issuing NOTAMs quickly once interference is corroborated and coordinating regionally to warn other operators.
Military units operate under additional communication constraints but follow similar practical steps. Military reporting prioritizes rapid attribution and countermeasures, but civil and military coordination is critical when interference affects commercial traffic or national infrastructure. NATO and national EW authorities, therefore, maintain liaison procedures to escalate cross-domain incidents. Parliamentary and defense briefings recommend documenting events and sharing forensic data while preserving operational security.
Good reporting practice in all domains requires preserving evidence and providing standardized data. Centralized incident submissions allow pattern analysis and help regulators issue area-wide warnings. Crowdsourced detection projects and academic anomaly detection tools can supplement official channels and speed community awareness.
In Summary
The vulnerabilities of GPS and GNSS represent a critical operational risk across military, aviation, and maritime domains. Their inherently weak signals are easily disrupted by intentional jamming, spoofing, or even natural phenomena such as solar flares and ionospheric disturbances. Real world incidents from the Black Sea to the Eastern Mediterranean and Arctic corridors have repeatedly demonstrated that overreliance on GNSS can jeopardize mission integrity, navigational safety, and the continuity of operations. To mitigate these threats, both defense forces and commercial operators should invest in A-PNT to further strengthen resilience by providing high-power, encrypted, and timing and positioning data.
The strategic imperative is clear: GNSS dependence must evolve toward a multi-layered ecosystem, integrating terrestrial and PNT technologies, procedural training, and robust reporting chains. For decision makers in defense, aviation, and commercial shipping, building resilience into PNT infrastructure has become an operational necessity for maintaining control, safety, and strategic advantage in an increasingly contested environment.
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Why GPS Isn’t Enough Anymore, And What Lies Beyond
Every time your phone pings “You have arrived”, it’s easy to forget that satellites, atomic clocks and radio beams are doing the heavy lifting. For decades, GPS has been the quiet backbone of modern life, powering navigation, synchronizing telecom networks, and enabling aviation, shipping and defense operations to function effectively. But GPS dependence is starting to look fragile.
Over the last few years, the world has seen an alarming rise in deliberate GPS jamming and spoofing. In 2024, over 1,000 commercial flights a day were affected by GPS spoofing, and this is not an isolated trend. There’s growing awareness that single-source dependence on GNSS/GPS is a strategic vulnerability. The increase of jamming and spoofing incidents has sparked growing concern that GPS manipulation could be exploited for strategic or economic gain, prompting the United Nations to call for stronger safeguards against GPS satellite interference. Aviation, shipping and defense organizations need a practical, deployable alternative now – and a plan for a layered approach in the future – because the real question isn’t if GPS will fail, but what we’ll do when it does.
The Threat of Jamming and Spoofing
Put in simple terms, “jamming” means drowning satellite signals with noise so receivers can’t hear the real thing, and “spoofing” feeds false satellite signals to trick receivers into believing they’re somewhere they’re not.
Deliberate jamming and spoofing incidents are rising in aviation, commercial shipping and defense, and the consequences are no longer hypothetical. In the Baltic Sea and Gulf of Finland, reports of jamming and spoofing incidents rose from 1,225 affected shipping vessels in Q1 of 2025, to more than 5,800 affected vessels in Q2 – a 127% increase. Six years ago, in 2019, commercial vessels operating in Chinese ports around Shanghai, reported widespread GPS anomalies. Ships experienced sudden changes in reported positions, with some appearing to move erratically or vanish from tracking systems. Investigations revealed that these anomalies were due to GPS spoofing attacks which affected hundreds of vessels and disrupted port operations.
Fast forward to this year, and the Nordic and Baltic nations, including Finland, Latvia, Lithuania and Estonia, repeatedly warned about greater electronic interference from Russia disrupting communications with planes, ships and drones. In September of this year, a plane carrying European Union chief Ursula von der Leyen was forced to land in Bulgaria using paper maps after its GPS navigation systems were jammed.
These incidents alone underscore the growing vulnerability of global navigation systems and highlight the need for stronger safeguards against electronic interference in critical transportation and defense sectors.
When GPS fails in Aviation, Maritime and Defense
The Hybrid Navigation Future
With reliance on GPS across aviation, commercial shipping, and defense sectors, concerns about vulnerability to jamming, spoofing, and system outages have driven efforts to explore more resilient navigation technologies. A range of emerging solutions is shaping the future of Assured Positioning, Navigation, and Timing (A-PNT). Each alternative offers strengths and limitations, highlighting the likelihood that the future of navigation will depend on a hybrid mix rather than a single replacement for GPS.
1. Multi-constellation GNSS
Utilizing signals from multiple satellite systems increases redundancy and complicates blanket jamming – but it doesn’t solve targeted spoofing.
2. Inertial navigation systems (INS) and sensor fusion
High-grade inertial measurement units (IMUs) combined with map-matching can bridge gaps for short to medium durations. Classical INS drifts over time however, unless tightly integrated with GNSS to bound drift, and high-performance INS can be expensive.
3. eLORAN (terrestrial low-frequency radio)
eLORAN is a modernized terrestrial radio navigation system that can provide wide area PNT and is much harder to jam at scale. The UK’s Ministry of Defence is focusing its alternative positioning, navigation and timing (Alt PNT) initiative on developing “a proposal for a resilient, terrestrial, and sovereign Enhanced Long-Range Navigation (eLORAN) system to provide backup position and navigation.” In the proposal stage only, the reintroduction and deployment of eLORAN is not currently an active system for GPS resilience.
4. Quantum and advanced sensing
Quantum sensors – notably atom interferometers, quantum magnetometers and other quantum-enabled instruments – can measure motion, gravity or magnetic anomalies with extremely high precision, potentially enabling navigation without satellite signals for hours. Last year, Boeing completed the first recorded flight using quantum navigation systems to navigate across the central United States for four hours without GPS. These technologies are not available outside of testing yet, but could be an option for navigation independent of GPS in the future.
5. Assured Positioning, Navigation and Timing (A-PNT)
Unlike GNSS satellites in Medium Earth Orbit (MEO), Iridium satellites transmit PNT signals from Low Earth Orbit (LEO) that are approximately 1,000 times stronger than GPS signals, allowing them to penetrate buildings and other hard-to-reach areas. The Iridium PNT service also incorporates cryptographic authentication to protect against spoofing and tampering. Thus, unauthorized or falsified signals are rejected, ensuring that systems operate only on trusted information. To harness Iridium PNT, organizations will need compatible receivers, firmware updates and integration with existing PNT stacks. However, that effort is still easier and faster today than building a whole eLORAN network or replacing INS suites.

After appraising what’s available today, Iridium’s PNT service for A-PNT stands out as the most immediate, practical, and deployable mitigation to GPS jamming and spoofing. Drawing on our experience designing and building A-PNT hardware that leverages this service, we see it as a realistic option organizations can adopt now, not just a concept on the horizon.
It’s important to note, however, that A-PNT is not a full replacement for every GPS/GNSS function. While Iridium PNT excels in providing trusted timing and “truth” signals that help detect spoofing or restore receiver integrity, some high-precision positioning applications (such as sub-decimeter RTK-level GNSS for surveying) will continue to depend on multi-constellation GNSS and augmentation for the foreseeable future. For that reason, both the National Telecommunications and Information Administration (NTIA) and leading industry bodies advocate a layered approach to GPS resilience.
Iridium PNT:
- Is already trusted by defense and commercial sectors
- Delivers stronger LEO signals than GNSS MEO signals
- Delivers hard-to-jam signals with cryptographic techniques
- Is in deployment now, commercially available, and expanding.
A Layered Approach for Future GPS Resiliency
GPS reshaped modern life and will remain vital to everyday navigation and positioning, so the right answer isn’t to replace GPS, but complement it with A-PNT. Jamming and spoofing incidents are real, growing, and in some regions, weaponized. The future of resilient navigation is a hybrid one – multiple GNSS constellations, A-PNT, and in the years to come, hardened terrestrial systems like eLORAN and robust inertial/quantum sensors.
From commercial aviation to maritime shipping, military operations to critical infrastructure, reliance on a single GNNS/GPS source exposes organizations to jamming, spoofing, and unexpected interference. The examples of disrupted flights, misreported vessel locations, and spoofed navigation systems highlight its vulnerabilities.
A layered approach to PNT is essential. Among these, Iridium PNT stands out as an immediate, resilient solution. APNT provides critical timing and location integrity that organizations can rely on while building a more comprehensive layered system. Together, those layers can make sure “You have arrived” stays true, even when someone tries to move you off course.
Connecting Assets and Operations Beyond GPS
Building resilient A-PNT into our operations isn’t about replacing GPS, it’s about ensuring confidence when GPS can’t be trusted.
With over 20 years of experience, we’re a satellite-enabled solutions partner you can trust to implement technology that safeguards your aviation, maritime, and defense operations and for secure, real time data transmission wherever your journey takes you.
If you’d like to know more about our APNT solutions, our team can help you. Email hello@groundcontrol.com or complete the form, and we’ll be in touch within one working day.
How RockBLOCK APNT Ensures Resilient Tracking For Military In GPS-Denied Environments
In today’s digital battlespace, Assured Positioning, Navigation, and Timing (APNT) is more than a utility; it’s the invisible infrastructure behind every mission. As adversaries grow more technologically capable, the reliability of conventional GPS-based systems is increasingly at risk. Electronic warfare tactics, such as GPS jamming and spoofing, can create blind spots and disrupt mission-critical functions. A resilient solution is needed, designed to maintain accurate, trusted location and timing data even when GPS is spoofed, faked or denied.
From satellite tracking and coordinated troop movements to secure communications and synchronized operations, reliable PNT enables modern militaries to act with speed, accuracy, and global reach.
Encapsulated within Ground Control’s RockBLOCK APNT device, reliable, global, and jamming-resilient positional awareness can be achieved by military personnel in hostile, GPS-contested environments. This blog examines the modern-day need for reliable location assurance beyond GPS for military effectiveness.
Why PNT Is Critical for Military Success
PNT systems, chiefly GPS and GNSS, are foundational to all branches of modern defense, forming the backbone of situational awareness, coordination, and operational execution. Real-time, accurate positioning provides the precise geolocation of military forces, vehicles, and critical assets, allowing commanders to make informed decisions in real time.
Navigation enables units to move accurately and more safely across land, air, or sea to ensure missions stay on course and with optimum execution. Timing is crucial for synchronizing a wide range of activities, from encrypted communications and sensor network operations to financial transactions and time-sensitive Intelligence, Surveillance, and Reconnaissance (ISR) data processing.
Numerous military functions rely on accurate and uninterrupted PNT, including Blue Force Tracking (BFT) – a system that utilizes GPS technology to track the location of friendly forces, cybersecurity command and control (C2) systems, precision time-stamping for ISR platforms, and the coordination of multi-domain operations. Without reliable PNT systems and GPS/GNSS, these operations can quickly become disjointed, inefficient, and vulnerable, jeopardizing both mission success and the safety of military personnel.
The GPS Vulnerability Problem
While GPS remains the backbone of PNT, it is vulnerable. GPS signals are low power, unencrypted and easy to jam, spoof, or fake with relatively inexpensive equipment.
In hostile environments, such as near-peer conflict zones and congested battlespaces, adversaries often target GPS to disrupt coordination, conceal positions, or disable military tracking systems.
Even in peacetime or humanitarian missions, natural obstructions like urban canyons, mountains, and indoor locations can degrade signal reception.
APNT is different. A key component of APNT is the use of one-way, secured signals transmitted from Low Earth Orbit (LEO) satellites. These signals are significantly stronger than traditional GPS – up to 1,000 times more powerful in some systems – making them far more resistant to jamming and interference. When integrated into a layered APNT architecture, these satellite-based signals help ensure trusted timing and location data even in GPS-denied environments.

It’s worth noting that APNT is designed to complement, not replace, GPS and GNSS-based systems. PNT and APNT signals are compatible with some of the same hardware that supports GPS, allowing for seamless integration into existing navigation solutions. This makes APNT an ideal component of a layered satellite-tracking system strategy, enhancing resilience,
security, and continuity of positioning and timing services in critical military applications.
RockBLOCK APNT For Assured PNT Beyond GPS
For unmanned or unattended deployments, RockBLOCK APNT offers resilient satellite time and location capability in a compact, ruggedized form factor. Designed for integration into autonomous systems, remote infrastructure, and stationary platforms, it ensures critical operations remain synchronised and secure, even in heavily contested GNSS environments.
With the ability to transmit APNT data, as well as text-based messages and telemetry data (up to 100 KB per transmission), RockBLOCK APNT also serves as an effective failover
communication channel when primary systems are compromised or unavailable. Its versatility and resilience make it a valuable asset for mission-critical operations where assured connectivity is essential.

A Layered PNT Strategy for Modern Defense
As militaries shift toward Multi-Domain Operations (MDO), the security and reliability of PNT and GPS are strategic priorities. Relying solely on GPS is no longer acceptable. The U.S. Department of Defense and allied nations are actively pursuing Assured PNT (APNT) initiatives, combining multiple sources to create a layered, fault-tolerant system. RockBLOCK APNT is a key enabler of this strategy in providing a complementary, GPS-independent signal that strengthens the PNT architecture.
Gain The Advantage With Mission Ready Satellite IoT
For over 20 years, we’ve partnered with defense forces, government agencies, and security contractors to develop a number of military-grade devices, harnessing APNT.
Learn how this technology can give you the tactical advantage in your mission-critical operations.
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Our satellite-enabled RockBLOCK APNT solutions offer robust positional data connectivity when GPS fails, for defense applications and more. Partner with us to explore all our satellite solutions that safeguard your military operations anywhere in the world.
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Tackling Maritime GPS Spoofing and Jamming Threats with RockFLEET Assured
One of the most disruptive threats to commercial and military maritime operators is the manipulation of Global Navigation Satellite Systems (GNSS), primarily by low-cost GPS jammers, state-sponsored GPS spoofing campaigns, and cyber-physical interference. From oil tankers seized via spoofed coordinates to cargo ships disappearing from satellite tracking due to jamming, the vulnerabilities of GNSS reliant systems are no longer theoretical, they’re operational hazards. These disruptions compromise navigation, safety, and compliance monitoring, particularly in high-risk regions such as the Baltic Sea, Eastern Mediterranean, and other areas with geopolitical tensions.
GPS Jamming Issue Grows in Eastern Mediterranean and Black Seas
Daily, October 1, 2023 – April 4, 2024

GNSS/GPS manipulation has far-reaching implications, from compromised navigation to operational disruptions. While there are various satellite-based techniques for detecting spoofing and jamming, RockFLEET Assured offers a truly resilient alternative. In this blog, we explore how it works and why it matters.
Key Differences Between Jamming and Spoofing
| Jamming | Spoofing | |
|---|---|---|
| Definition | Overwhelms GNSS signals with noise to block reception | Sends fake GNSS signals to mislead the calculation of a false position/time |
| Mechanism | High power RF signals on GNSS frequencies disrupt signal acquisition | Fake signals mimic legitimate ones, often stronger, to deceive the vessel |
| Goal | Denial of service (DoS) – prevents GNSS-based operation | Deceives the receiving vessel into believing a false position or time |
| Effect on receiving vessel | Loss of satellite lock; receiving vessel cannot determine position/time | The receiving vessel continues to operate, but with incorrect data |
| Detection difficulty | Often easy to detect due to complete signal loss | Harder to detect, may go unnoticed as the vessel operates normally |
| Signal power | High (to overpower weak satellite signals, typically > -100 dBm) | High (to overpower weak satellite signals, typically > -100 dBm) |
| Legality | Illegal in most countries | Also illegal, often more complex to execute and trace |
| Hardware requirements | Relatively simple – can be handheld or vehicle-mounted | More complex, requires GNSS signal generation and precise timing |
| Use cases (malicious) | Disrupt vessel navigation, leave crew and cargo vulnerable to attack | Mislead ships, expose ships to hijacking, steer vessels into dangerous waters |
Implications for the Shipping Industry
The interception and denial of GNSS/GPS connectivity pose significant risks to the commercial shipping industry. GPS spoofing, for example, misleads shipping vessels into believing they are on a safe course when in reality, they may be heading into dangerous waters or restricted areas. Reports indicate that vessels in the Eastern Mediterranean have been falsely located at airports, and other instances have shown ships being misled into high-risk territories. Many vessels, especially those without backup navigation systems, are vulnerable to these attacks.
In July 2019, the UK-flagged oil tanker Stena Impero, operated by Stena Bulk, was seized by Iranian forces while transiting the Strait of Hormuz. Investigations suggest that the vessel’s navigation systems were subjected to GPS spoofing, causing it to deviate into Iranian territorial waters. Analysis of AIS data indicated anomalies consistent with spoofing attacks, where counterfeit signals misled the ship’s navigation systems. This incident highlighted the vulnerabilities in maritime navigation and the potential for state actors to exploit them.
Later in 2019, vessels operating near Chinese ports, particularly around Shanghai, reported widespread GPS anomalies. Ships experienced sudden changes in reported positions, with some appearing to move erratically or vanish from tracking systems. Investigations revealed that these anomalies were due to GPS spoofing attacks, affecting hundreds of vessels and disrupting port operations. The incidents raised concerns about the potential for such attacks to be used for strategic or economic purposes, with the United Nations urging the protection of satellite navigation from interference.
Spoofing and Jamming Detection via Satellite
Satellite systems can detect GNSS/GPS spoofing and jamming by identifying inconsistencies via a number of indicators and parameters.
Positional behavior can indicate spoofing or jamming. Satellite systems can identify positional and movement abnormalities and send alerts when ships “jump” positions, show physically impossible maneuvers, such as a 90° turn at high speed, or appear in two locations simultaneously, known as ghost ships. Further, comparison with terrestrial radar and sensors is a method of spoofing detection. Satellites compare reported Automatic Identification System (AIS) data with ground radar or visual surveillance, and mismatches may indicate spoofing.
To avoid and prevent spoofing and jamming attacks, commercial shipping companies can support risk-based routing. Here, shipping companies use historical spoofing “heat maps” to reroute vessels around known interference zones, such Baltic Sea, Eastern Mediterranean, and any other region or zone with geopolitical tensions.
These detection techniques are effective, but the vulnerabilities of GNSS/GPS signals remain. A secure and resilient solution is required for complete visibility and confidence of vessel positioning at sea.
Iridium PNT For GNSS/GPS Protection at Sea
While satellite-enabled detections exist to combat traditional GNSS/GPS spoofing and jamming, Iridium offers an uncontested solution – a secure alternative for acquiring positioning, navigation, and timing (PNT) information anywhere in the world.
Iridium PNT is a one-way signal broadcast via the Iridium satellite constellation, 1,000 times stronger than GPS, making it far more resilient to jamming. Leveraging Iridium’s LEO satellite constellation and thus, a signal 25 times closer to the Earth than GNSS, Iridium PNT delivers accurate time and position data without needing traditional GNSS visibility, giving commercial ships and maritime systems trusted positioning even when GPS is denied.
Iridium PNT is not designed to replace GNSS; rather, it’s designed to complement it. Many existing GPS/GNSS receivers are capable of receiving Iridium PNT signals, making it easy to incorporate as part of a layered approach to reliable, secure and resilient tracking and positioning.

How RockFLEET Assured Utilizes Iridium PNT for Jamming-Resilient Maritime Tracking
RockFLEET Assured is a ruggedized, compact satellite-based tracking solution that harnesses the power of Iridium PNT to deliver a secure signal independent of terrestrial or GNSS infrastructure. This PNT service offers an alternative when GPS or GNSS Global signals are absent, denied, or disrupted.
Traditional GPS signals are vulnerable and easy to overpower or imitate with spoofing equipment. Iridium PNT, by contrast, resists these threats through cryptographic techniques so spoofers cannot easily mimic the signals. Complementing traditional GPS / GNSS and delivering a reliable backup, RockFLEET Assured enables transmission of vessel location updates even when GPS / GNSS is being denied, spoofed, or jammed.
This is vital for commercial ships as well as vessels transiting piracy or cyber-prone regions, unmanned surface vehicles (USVs) operating in contested waters and NATO and allied vessels conducting patrols in high-risk areas.

The technology encapsulated within RockFLEET Assured is designed for easy integration with existing maritime equipment. The device is a single above-deck terminal with no below-deck electronics required, without the optional bridge view, and setup/status are provided via a Bluetooth LE mobile app. RockFLEET Assured is compact, IP67 waterproof – ideal for harsh marine conditions – and features a marine-grade smart antenna that integrates the Iridium PNT module to support A-PNT workflows and Iridium Messaging Transport (IMT) to enable routine position reports.
Purpose-built, RockFLEET Assured is an ideal satellite-enabled, secure and rugged solution for shipping companies to tackle the ongoing threat of GPS spoofers and jammers.
Operational Scenarios with RockFLEET Assured
There are several operational scenarios where RockFLEET Assured provides an uncontested, reliable solution to GPS-denied environments, spoofing, and jamming:
Anti-Spoofing for Cargo Ships: A container vessel approaching a spoofing hotspot in the Eastern Mediterranean receives conflicting GPS signals. RockFLEET Assured continues to deliver trusted positioning, allowing the bridge crew and HQ to detect the spoof and maintain safe routing.
Naval Operations in Denied Environments: A patrol vessel operating under electronic warfare conditions near contested maritime borders loses GPS functionality. Utilizing RockFLEET Assured, onboard systems retain accurate time and position data, crucial for navigation, targeting, and tactical coordination.
Unmanned Maritime Drones: An autonomous surface vessel in the Arctic Circle cannot acquire GPS due to interference. RockFLEET Assured ensures connectivity, continuity and remote GPS monitoring via Iridium.
Secure Positioning When GPS Goes Dark
From bulk carriers drifting off-course in the Black Sea to naval vessels being targeted in the Red Sea, GNSS/GPS interference has shifted from a rare anomaly to a strategic weapon. The rise of low-cost jammers, state-sponsored spoofing campaigns, and cyber-physical interference has exposed a serious blind spot in global shipping: overdependence on vulnerable, unprotected GNSS/GPS satellite signals. RockFLEET Assured provides an essential layer of protection, ensuring a secure, resilient, and critical connection to vessels at sea.
With RockFLEET Assured, Ground Control offers a compact, secure, and rugged satellite-based solution that ensures maritime assets stay online, stay located, and stay safe, even when GPS goes dark.
Can we help?
Partner with us to implement satellite technology that safeguards your maritime operations and enhances secure, real-time data transmission wherever your journey takes you.
Complete the form or email us at hello@groundcontrol.com and we’ll get back to you within one working day.