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Dassault Aviation Flight-Tests Sovereign AI on Rafale Fighter

Dassault Aviation successfully flight-tested two sovereign AI cockpit algorithms on the Rafale, targeting the F5 standard in the 2030s.

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Dassault Aviation has successfully flight-tested two sovereign AI algorithms on the Dassault Rafale fighter jet, advancing the integration of supervised cockpit assistants intended for the upcoming Rafale F5 standard.

In a press release issued on September 22, 2026, from its headquarters in Saint-Cloud, France, the manufacturer announced that the algorithms have reached a maturity level suitable for future aircraft upgrades. One algorithm was developed internally by Dassault Aviation engineers, while the second was co-developed with Thales through its cortAIx artificial intelligence division.

Cockpit automation and pilot workload

The newly tested algorithms are designed to act as controlled and supervised assistants in the cockpit. By handling repetitive tasks, the systems aim to reduce pilot workload during high-intensity operations.

This reduction in manual task management allows human crews to focus on complex combat missions and tactical decision-making. The company stated that the development of these functions is part of a broader initiative to integrate AI into the cockpit, “serving the human crew.”

Integrating these systems into a combat aircraft presents specific engineering hurdles. Dassault Aviation outlined the technical requirements in its announcement:

“This capability requires mastering several key challenges specific to military aviation: ensuring the availability and quality of operational data (real or simulated), leveraging and synergizing domain expertise, and optimizing resource efficiency on an embedded platform subject to stringent constraints.”

The Rafale F5 standard and sovereign defense

The successful flight tests pave the way for the Rafale F5 upgrade, which is targeted for rollout in the 2030s. On September 11, 2026, France awarded contracts to secure the industrial foundation for this new standard.

The Rafale F5 will heavily feature crew assistance, predictive maintenance, and collaborative combat capabilities. These systems will integrate the fighter with unmanned combat aerial systems (UCAS) and other networked assets on the battlefield.

The emphasis on sovereign AI aligns with France’s defense autonomy goals, ensuring critical combat technology remains independent of foreign control. Dassault Aviation has also recently partnered with Harmattan AI to develop embedded AI and electronic-warfare capabilities. This partnership has included collaborative flight-tested demonstrations involving the Dassault Rafale and unmanned aircraft.

AirPro News analysis

We view the emphasis on sovereign AI as a critical differentiator in the European combat aircraft market. By keeping the development of these algorithms strictly within French industrial partners like Thales and Harmattan AI, Dassault Aviation is positioning the Rafale F5 as a fully autonomous platform free from International Traffic in Arms Regulations (ITAR) or other foreign export controls. This independence is a major selling point for export customers seeking advanced collaborative combat capabilities without third-party veto power over their deployment or operational data.

Sources: Dassault Aviation

Photo Credit: Dassault Aviation

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Defense & Military

Volatus Aerospace V-Cortex Completes GPS-Denied Flight Test

Volatus Aerospace demonstrates GPS-denied navigation with its V-Cortex AI Flight Controller using only default onboard sensors.

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On September 22, 2026, Vaughan, Ontario-based Volatus Aerospace Inc. announced the successful initial flight testing of its V-Cortex AI Flight Controller, demonstrating the ability of an uncrewed aircraft system to navigate in a GPS-denied environment using only onboard default sensors.

According to a company press release, the milestone validates the platform’s resilient autonomy capabilities for operations where Global Navigation Satellite System (GNSS) signals are degraded, intentionally disrupted, or unavailable. The V-Cortex system functions as a platform-agnostic autonomy layer designed for integration across multiple Uncrewed Aircraft Systems (UAS), eliminating the need for operators to develop separate autonomy architectures for different airframes.

Advancing sovereign autonomy capabilities

The recent Test-Flights transition the V-Cortex platform from the development phase to demonstrated performance. Volatus Aerospace initially introduced the system as a sovereign Canadian autonomy platform during the CANSEC defence exhibition earlier in 2026. The system is engineered to support operations in contested military environments, dense urban areas, and remote regions such as the Canadian Arctic.

The flight controller achieved navigation without relying on external sensors or high-performance computing, utilizing only the default sensor suite integrated into the aircraft.

“Successfully navigating without GPS or external sensors is a major technical milestone that validates our approach to resilient autonomy,” stated Glen Lynch, Chief Executive Officer of Volatus Aerospace. “It brings us one step closer to delivering a Canadian-developed solution for defence, public safety, and critical infrastructure operators.”

Expanding defence and regulatory footprint

The V-Cortex flight milestone follows a series of recent defence and regulatory advancements for Volatus Aerospace. On September 21, 2026, the company was selected as a pre-qualified supplier under the Government of Canada’s Defence Drone Initiative (DDI) Marketplace. This qualification establishes a formal pathway for the Manufacturers to compete for upcoming uncrewed and autonomous systems Contracts supporting the Canadian Armed Forces and the Canadian Coast Guard.

Prior to the DDI qualification, Volatus Aerospace secured a five-year Canadian defence contract on September 10, 2026, to provide Low-Cost Tactical Intelligence, Surveillance and Reconnaissance (ISR) Uncrewed Aircraft Systems. The agreement includes an initial order of 100 systems, with the potential to scale up to 5,000 units over the life of the contract.

The company is also advancing its commercial cargo operations. During its second-quarter earnings call on September 18, 2026, Volatus highlighted regulatory progress for its Canary remotely piloted aircraft system. The Canary utilizes an onboard detect-and-avoid system independent of ground-based radar, a technology currently deployed for cargo deliveries at Edmonton International Airport (YEG).

AirPro News analysis

The successful demonstration of GNSS-denied navigation positions Volatus Aerospace to capitalize on growing military demand for resilient uncrewed systems. As electronic warfare and GPS spoofing become standard tactics in modern conflicts, defence operators require platforms capable of maintaining autonomous flight when satellite navigation is compromised. By developing a platform-agnostic autonomy layer, we assess that Volatus is creating a scalable product that could be licensed or integrated into third-party airframes, diversifying its revenue streams beyond proprietary hardware sales. The rapid succession of the tactical ISR contract, the DDI Marketplace qualification, and the V-Cortex flight milestone indicates a coordinated push to solidify the company’s standing as a primary supplier for Canadian defence and public safety agencies.

Sources: Volatus Aerospace Inc.

Photo Credit: Volatus Aerospace

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Defense & Military

GA-ASI Delivers FQ-42 Vengeance CCA to U.S. Air Force

GA-ASI delivered the FQ-42 Vengeance CCA to Creech AFB on Sept. 18, 2026, advancing USAF autonomous fighter integration.

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General Atomics Aeronautical Systems, Inc. (GA-ASI) delivered a new FQ-42 Vengeance Collaborative Combat Aircraft (CCA) to the United States Air-Forces (USAF) at Creech Air Force Base in Nevada on September 18, 2026. The delivery advances the military’s push to integrate semi-autonomous uncrewed fighters alongside crewed combat aircraft.

In a press release issued on September 21, 2026, GA-ASI confirmed the aircraft will support ongoing test and evaluation operations. The milestone follows the official naming of the CCA platforms earlier in the month and underscores the rapid development timeline of the uncrewed fighter program.

Advancing the Collaborative Combat Aircraft program

The USAF selected GA-ASI to build production-representative flight test articles in April 2024. Following the aircraft’s Maiden-Flight in August 2025, the service awarded an initial production contract in June 2026.

Secretary of the Air Force Troy Meink officially designated the GA-ASI platform as the FQ-42 Vengeance and the competing Anduril Industries platform as the FQ-44 Fury during the Air, Space and Cyber Conference on September 11, 2026.

“The CCA program’s rate of progress has been incredible. Every week, the Air Force is pushing forward with new and more impressive accomplishments using Vengeance. It’s amazing to think of how far this program has come in such a short amount of time,” said Mike Atwood, Vice President of Advanced Programs at GA-ASI.

Production capacity and operational integration

To meet USAF deployment goals, GA-ASI is positioned to deliver six FQ-42 aircraft per month. The Manufacturers recently completed a new low-observable paint facility designed to support CCA production and expand Manufacturing capacity.

The FQ-42 Vengeance has already conducted formation flights alongside the Lockheed Martin F-35 Lightning II and the Boeing F-15E Strike Eagle. These flights are preparing the uncrewed platform for collaborative control operations with manned fighters.

The USAF intends to field a minimum of 500 autonomous aircraft by 2032. According to the Air Force Times, Secretary Meink stated that by that time, special operators will have the ability to employ thousands of autonomous one-way attack systems alongside autonomous fighters like the CCA.

AirPro News analysis

The Delivery of the FQ-42 Vengeance to Creech Air Force Base demonstrates a tangible shift from conceptual development to operational testing for the CCA program. We note that the timeline from the April 2024 selection to the September 2026 delivery of a production-representative article is unusually compressed for modern military aviation procurement. The stated production capacity of six airframes per month indicates that GA-ASI is scaling its industrial base to meet the 500-aircraft target by 2032. The success of the FQ-42 Vengeance and the FQ-44 Fury will likely dictate the future force structure of the USAF tactical fleet.

Sources: General Atomics Aeronautical Systems, Inc.

Photo Credit: GA-ASI

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Defense & Military

Lockheed Martin Links 16 F-35 Simulators Across Four Bases

Lockheed Martin connected 16 F-35 simulators across four military bases in a multidomain combat rehearsal on September 21, 2026.

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Lockheed Martin successfully linked 16 F-35 Lightning II full mission simulators across four military installations during a two-hour multidomain combat rehearsal announced on September 21, 2026. The virtual exercise integrated U.S. Marine Corps and U.S. Navy crews, demonstrating the technical viability of large-scale distributed simulator networks for complex tactical training.

In a press release detailing the event, Lockheed Martin confirmed the simulation connected five geographically separated bases in total. The network allowed participating units to maintain command-and-control and situational awareness without the logistical footprint or financial costs associated with a live-flight exercise.

Distributed network architecture

The distributed network connected Marine Corps Air Station (MCAS) Yuma, MCAS Miramar, MCAS Iwakuni, and Naval Air Station (NAS) Lemoore, which hosted the 16 F-35 simulators. A fifth installation, NAS Oceana, integrated F/A-18 and E-2D Hawkeye simulators into the single virtual tactical environment.

The integration of air, surface, and cyber domains allowed crews to execute complex mission scenarios. Lockheed Martin stated the exercise facilitated seamless data exchange across the network. Ken Garrett, Vice President of F-35 Training and Logistics at Lockheed Martin, emphasized the operational relevance of the event.

“This exercise enabled warfighters to train the way they fight. They complete complex missions in coordination across distances — their training should represent their missions.”

Garrett added that mission rehearsal across multiple bases builds the readiness and interoperability required for future operations.

Expanding global simulation capabilities

The September 21, 2026, announcement follows a broader Military-Aircraft push toward networked virtual training environments. On July 21, 2026, the U.S. Air Force integrated F-35 Emulated Non-Operational Flight Program Interoperability Experience (FENIX) simulators into the VALIANT SHIELD 2026 exercise at Misawa Air Base in Japan. The U.S. Indo-Pacific Command noted this deployment expanded the use of simulator networks to refine tactics among joint and allied forces.

International operators are also investing in distributed training infrastructure. On January 7, 2026, reports emerged that Italy is constructing the first F-35 Pilot Training Center outside the United States at Trapani-Birgi. The facility is designed to link Italian crews to the global F-35 distributed training network for electronic warfare and networked operations scenarios.

AirPro News analysis

We view the successful linkage of 16 full mission simulators across the Pacific and the continental United States as a critical milestone for fifth-generation fighter training. Live-flight exercises involving F-35 Lightning II, F/A-18, and E-2D Hawkeye aircraft require massive logistical support, airspace coordination, and fuel expenditures. Virtual environments allow operators to practice highly classified electronic warfare and stealth tactics without exposing their signatures to adversary intelligence-gathering assets. As the U.S. Department of Defense and international partners face constrained training budgets, the reliance on high-fidelity, distributed simulation networks will likely become a primary method for maintaining combat readiness.

Sources: Lockheed Martin

Photo Credit: Lockheed Martin

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