시장보고서
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2112154

차세대 자율 전투비행기 시장 인사이트, 경쟁 구도 및 시장 예측(-2033년)

Next-Generation Autonomous Combat Aircraft Market Insights, Competitive Landscape, and Market Forecast - 2033

발행일: | 리서치사: 구분자 Fairfield Market Research | 페이지 정보: 영문 192 Pages | 배송안내 : 2-5일 (영업일 기준)

    
    
    



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한글목차
영문목차
※ 본 상품은 영문 자료로 한글과 영문 목차에 불일치하는 내용이 있을 경우 영문을 우선합니다. 정확한 검토를 위해 영문 목차를 참고해주시기 바랍니다.

세계 차세대 자율 전투비행기 시장은 2026년 28억 8,000만 달러로 평가되었고, 2033년까지 77억 1,000만 달러에 달할 것으로 예측됩니다. 또한, 예측 기간 동안 연평균 성장률(CAGR)은 15.10%로 성장할 것으로 전망됩니다. 국방 기관들이 자율 비행, 인공지능, 네트워크 전쟁 및 첨단 임무 수행 능력을 우선시함에 따라 세계 시장은 변혁을 겪고 있습니다. 차세대 자율 전투비행기는 단독으로 또는 유인 플랫폼과 연계하여 운용될 수 있도록 개발되고 있으며, 속도, 정밀도, 지속성, 그리고 적대적인 환경에 대한 인력의 노출을 줄여야 하는 임무를 지원합니다.

방위 현대화 프로그램의 확대에 따라 무인 전투기, 협업형 전투기 및 ‘로얄 윙맨(Royal Wingman)’ 개념에 대한 관심이 높아지고 있습니다. 이러한 플랫폼은 연결된 항공기 간에 감지, 표적 포착, 전자전 및 공격 기능을 분산시키면서 작전 범위를 확대합니다. 자율성, 보안 통신, 추진 시스템, 센서 융합 및 기내 컴퓨팅의 발전으로 인해, 첨단 방위 생태계 전반에 걸친 보다 광범위한 도입이 촉진될 것으로 예측됩니다.

시장 인사이트

자율 전투비행기는 원격 조종 시스템에서 점차 더 독립적으로 임무를 수행할 수 있는 지능형 항공기로 진화하고 있습니다. 방위 기관들은 전장 정보를 처리하고, 다른 자산과 연계하며, 변화하는 임무 상황에 대응하고, 운영자의 지속적인 개입 없이 유인 항공기를 지원할 수 있는 플랫폼에 주목하고 있습니다.

협동형 전투기는 분산 운용을 통해 첨단 전투기를 보완할 수 있기 때문에 전략적 중요성이 높아지고 있습니다. ‘로얄 윙맨(Royal Wingman)’ 기체는 감시, 표적 포착, 전자전 및 전투 임무를 지원하는 동시에, 더 높은 가치를 지닌 유인 플랫폼이 위험한 환경에서 멀리 떨어진 위치에 머물 수 있도록 합니다. 또한, 군이 치열한 경쟁이 벌어지는 공역에 대해 지속적이고 유연한 시스템을 요구하는 가운데, UCAV(무인 전투기) 개발도 진전되고 있습니다.

인공지능과 센서, 미션 컴퓨터, 통신, 무기 관리의 통합이 기술 개발의 핵심 방향이 되고 있습니다. 각 제조업체들은 운용 요건의 변화에 따라 시스템, 탑재 장비, 소프트웨어 및 임무 능력을 업그레이드할 수 있는 모듈식 아키텍처를 중시하고 있습니다.

시장 확대의 요인

시장 확대를 뒷받침하는 요인은 몇 가지가 있습니다.

  • 방위 현대화 노력이 활발해지고 있으며, 자율형 및 무인 전투 항공 플랫폼에 대한 투자가 촉진되고 있습니다.
  • 고위험 임무에서 조종사가 위험에 노출되는 것을 줄이고자 하는 수요가 증가함에 따라, 경쟁 환경 하에서 자율형 항공기의 도입이 촉진되고 있습니다.
  • 인공지능, 머신러닝, 센서 융합 및 첨단 컴퓨팅 기술을 통해 자율 항행, 위협 식별, 협업 및 임무 의사결정 지원이 향상되고 있습니다.
  • 네트워크 중심 전쟁 전략에 따라, 다중 영역 방위 네트워크를 통해 정보를 공유하고 협업하여 운용할 수 있는 항공기에 대한 수요가 증가하고 있습니다.
  • 전자전 및 적의 방공 능력 제압에 대한 중요성이 높아짐에 따라, 특수한 자율형 플랫폼에 대한 요구 사항이 대두되고 있습니다.
  • 모듈식 페이로드 아키텍처의 개발로 인해 방위 기관은 감시, 공격, 통신, 전자전 및 기타 임무 요건에 맞추어 항공기를 구성할 수 있게 되었습니다.

비즈니스 기회

이 시장은 항공기 제조업체, 추진 시스템 개발 기업, 방위용 전자기기 공급업체, 소프트웨어 전문 기업, 센서 기업 및 통신 기술 공급업체에게 큰 비즈니스 기회를 제공합니다. 향후 프로그램에서는 단일 항공기가 아닌 통합된 생태계가 요구될 것으로 예상되며, 자율 소프트웨어, 보안 데이터 링크, 임무 시스템, 전자전 시스템, 항법 기술 및 첨단 페이로드 각 분야에서 비즈니스 기회가 창출될 것입니다.

방위군이 기존 및 미래의 유인 전투기와 병행하여 운용 가능한 합리적인 가격의 전력 증강 수단을 모색하는 가운데, 협업 전투 개념이 새로운 기회를 창출할 가능성이 있습니다. 호환 가능한 임무 패키지를 갖춘 확장 가능한 플랫폼을 개발할 수 있는 기업은 보다 광범위한 운용 요건에 대응할 수 있습니다.

하이브리드 전기 및 전기 추진 기술 또한 새로운 개발 분야로 부상하고 있습니다. 고성능 전투 용도에서는 제트 엔진이 여전히 중요하지만, 대체 추진 기술 연구는 효율 및 항속 시간 향상, 시그니처 저감, 혹은 특수한 운용 프로파일을 필요로 하는 임무를 지원할 가능성이 있습니다.

항공우주 제조업체, 방위 기관, 소프트웨어 기업, 기술 개발자 간의 파트너십을 통해 프로토타입 개발 및 시스템 통합이 가속화될 것으로 예측됩니다. 개방형 아키텍처를 통해 공급업체는 항공기의 전체 수명 주기 동안 센서, 소프트웨어 모듈, 통신 시스템, 임무 페이로드를 도입할 기회를 얻을 수 있습니다.

지역별 분석

북미는 첨단 항공우주 기술, 대규모 방위 현대화 프로그램, 인공지능에 대한 투자, 그리고 협업 전투 시스템의 활발한 개발에 힘입어 자율형 전투기 개발의 주요 거점으로 남아 있을 것으로 예측됩니다. 이 지역은 확고한 입지를 갖춘 방위 계약업체 및 기술 공급업체가 존재한다는 강점을 가지고 있습니다.

유럽에서는 미래 공중 전투 능력에 초점을 맞춘 각국 및 다자간 국방 프로그램을 통해 자율형 항공 기술의 발전이 추진되고 있습니다. 이 지역의 우선순위에는 상호 운용성, 첨단 전자 시스템, 안전한 통신, 그리고 유인·무인 플랫폼 간의 통합이 포함됩니다.

아시아태평양은 각국이 공군 현대화를 추진하고 자국의 항공우주 역량에 투자함에 따라 중요한 성장 지역으로 부상하고 있습니다. 전략적 경쟁의 격화, 방위 예산 확대, 그리고 첨단 감시·전투 시스템에 대한 수요가 자율형 항공기 개발을 촉진하고 있습니다.

라틴아메리카는 발전 중인 시장으로, 국방 현대화의 우선순위, 예산, 감시 능력에 대한 요구 사항이 자율 비행기 도입에 영향을 미칠 수 있습니다. 중동 및 아프리카도 일부 국가들이 첨단 방공, 무인 항공, 보안 기술에 투자하고 있어 기회를 제공합니다.

목차

제1장 주요 요약

제2장 시장 개요

제3장 세계의 차세대 자율 전투비행기 시장 전망, 2020년-2033년

제4장 북미 차세대 자율 전투비행기 시장 전망, 2020년-2033년

제5장 유럽 차세대 자율 전투비행기 시장 전망, 2020년-2033년

제6장 아시아태평양 차세대 자율 전투비행기 시장 전망, 2020년-2033년

제7장 라틴아메리카 차세대 자율 전투비행기 시장 전망, 2020년-2033년

제8장 중동 및 아프리카 차세대 자율 전투비행기 시장 전망, 2020년-2033년

제9장 경쟁 구도

제10장 부록

LSH 26.08.21

The global Next-Generation Autonomous Combat Aircraft Market is valued at US$ 2.88 Billion in 2026 and is projected to reach US$ 7.71 Billion by 2033, growing at a CAGR of 15.10% during the forecast period. The global market is transforming as defense organizations prioritize autonomous aviation, artificial intelligence, networked warfare, and advanced mission capabilities. Next-generation autonomous combat aircraft are being developed to operate independently or collaboratively with crewed platforms, supporting missions that require speed, precision, persistence, and reduced human exposure to hostile environments.

Growing defense modernization programs are accelerating interest in unmanned combat aerial vehicles, collaborative combat aircraft, and loyal wingman concepts. These platforms expand operational reach while distributing sensing, targeting, electronic warfare, and strike functions across connected aircraft. Advances in autonomy, secure communications, propulsion, sensor fusion, and onboard computing are expected to support broader adoption across sophisticated defense ecosystems.

Market Insights

Autonomous combat aviation is evolving from remotely operated systems toward intelligent aircraft capable of increasingly independent mission execution. Defense agencies are focusing on platforms that can process battlefield information, coordinate with other assets, respond to changing mission conditions, and support crewed aircraft without requiring continuous operator intervention.

Collaborative combat aircraft are gaining strategic importance because they can complement advanced fighters through distributed operations. Loyal wingman aircraft can support surveillance, targeting, electronic warfare, and combat missions while allowing higher-value crewed platforms to remain farther from dangerous environments. UCAV development is also advancing as militaries seek persistent and flexible systems for contested airspace.

The integration of artificial intelligence with sensors, mission computers, communications, and weapons management is becoming a central technology direction. Manufacturers are emphasizing modular architectures that allow systems, payloads, software, and mission capabilities to be upgraded as operational requirements evolve.

Drivers

Several factors are supporting market expansion:

  • Rising defense modernization initiatives are encouraging investment in autonomous and uncrewed combat aviation platforms.
  • Increasing demand for reduced pilot exposure during high-risk missions is strengthening adoption of autonomous aircraft for contested environments.
  • Artificial intelligence, machine learning, sensor fusion, and advanced computing are improving autonomous navigation, threat identification, coordination, and mission decision support.
  • Network-centric warfare strategies are increasing demand for aircraft capable of sharing information and operating collaboratively across multidomain defense networks.
  • Growing emphasis on electronic warfare and suppression of enemy air defense capabilities is creating requirements for specialized autonomous platforms.
  • Development of modular payload architectures enables defense operators to configure aircraft for surveillance, strike, communications, electronic warfare, and other mission requirements.

Business Opportunity

The market presents substantial opportunities for aircraft manufacturers, propulsion developers, defense electronics providers, software specialists, sensor companies, and communication technology suppliers. Future programs are expected to require integrated ecosystems rather than standalone aircraft, creating opportunities across autonomy software, secure datalinks, mission systems, electronic warfare suites, navigation technologies, and advanced payloads.

Collaborative combat concepts may create opportunities as defense forces seek affordable force multipliers that can operate alongside existing and future crewed fighters. Companies capable of developing scalable platforms with interchangeable mission packages can address broader operational requirements.

Hybrid-electric and electric propulsion technologies also represent an emerging development area. Although jet engines remain important for high-performance combat applications, alternative propulsion research could support missions requiring improved efficiency, endurance, reduced signatures, or specialized operating profiles.

Partnerships between aerospace manufacturers, defense agencies, software companies, and technology developers are expected to accelerate prototype development and system integration. Open architectures may create opportunities for suppliers to introduce sensors, software modules, communication systems, and mission payloads throughout aircraft lifecycles.

Region Analysis

North America is expected to remain a major center for autonomous combat aircraft development, supported by advanced aerospace capabilities, significant defense modernization programs, artificial intelligence investment, and active development of collaborative combat systems. The region benefits from established defense contractors and technology suppliers.

Europe is advancing autonomous aviation through national and multinational defense programs focused on future air combat capabilities. Regional priorities include interoperability, advanced electronic systems, secure communications, and integration between crewed and uncrewed platforms.

Asia Pacific is emerging as an important growth region as countries modernize air forces and invest in indigenous aerospace capabilities. Rising strategic competition, expanding defense budgets, and demand for advanced surveillance and combat systems are encouraging autonomous aircraft development.

Latin America represents a developing market where adoption may be influenced by defense modernization priorities, budgets, and requirements for surveillance capabilities. Middle East & Africa also offers opportunities as selected countries invest in advanced air defense, unmanned aviation, and security technologies.

Key Players

  • Lockheed Martin Corporation
  • Northrop Grumman Corporation
  • The Boeing Company
  • General Atomics Aeronautical Systems, Inc.
  • BAE Systems plc
  • RTX Corporation
  • Kratos Defense & Security Solutions, Inc.
  • Saab AB
  • Airbus Defence and Space
  • Turkish Aerospace Industries

These companies are contributing to the competitive landscape through aircraft development, autonomy technologies, mission systems, sensors, propulsion integration, electronic warfare capabilities, and collaborative combat concepts. Competition is expected to center on survivability, autonomy, interoperability, mission flexibility, affordability, scalability, and rapid technology upgrades.

Segmentation

Platform

  • Unmanned Combat Aerial Vehicles (UCAVs)
  • Collaborative Combat Aircraft (CCA)
  • Loyal Wingman Aircraft

By Propulsion

  • Jet Engine
  • Hybrid-Electric Propulsion
  • Electric Propulsion

By Application

  • Intelligence, Surveillance & Reconnaissance (ISR)
  • Combat Strike Missions
  • Electronic Warfare
  • Suppression of Enemy Air Defense (SEAD)
  • Others

By Regions

  • North America
  • Europe
  • Asia Pacific
  • Latin America
  • Middle East & Africa

Table of Contents

1. Executive Summary

  • 1.1. Global Next-Generation Autonomous Combat Aircraft Market Snapshot
  • 1.2. Future Projections
  • 1.3. Key Market Trends
  • 1.4. Regional Snapshot, by Value, 2026
  • 1.5. Analyst Recommendations

2. Market Overview

  • 2.1. Market Definitions and Segmentations
  • 2.2. Market Dynamics
    • 2.2.1. Drivers
    • 2.2.2. Restraints
    • 2.2.3. Market Opportunities
  • 2.3. Value Chain Analysis
  • 2.4. COVID-19 Impact Analysis
  • 2.5. Porter's Five Forces Analysis
  • 2.6. Impact of Russia-Ukraine Conflict
  • 2.7. PESTLE Analysis
  • 2.8. Regulatory Analysis
  • 2.9. Price Trend Analysis
    • 2.9.1. Current Prices and Future Projections, 2025-2033
    • 2.9.2. Price Impact Factors

3. Global Next-Generation Autonomous Combat Aircraft Market Outlook, 2020-2033

  • 3.1. Global Next-Generation Autonomous Combat Aircraft Market Outlook, by Platform, Value (US$ Bn), 2020-2033
    • 3.1.1. Unmanned Combat Aerial Vehicles (UCAVs)
    • 3.1.2. Collaborative Combat Aircraft (CCA)
    • 3.1.3. Loyal Wingman Aircraft
  • 3.2. Global Next-Generation Autonomous Combat Aircraft Market Outlook, by Propulsion, Value (US$ Bn), 2020-2033
    • 3.2.1. Jet Engine
    • 3.2.2. Hybrid-Electric Propulsion
    • 3.2.3. Electric Propulsion
  • 3.3. Global Next-Generation Autonomous Combat Aircraft Market Outlook, by Application, Value (US$ Bn), 2020-2033
    • 3.3.1. Intelligence, Surveillance & Reconnaissance (ISR)
    • 3.3.2. Combat Strike Missions
    • 3.3.3. Electronic Warfare
    • 3.3.4. Suppression of Enemy Air Defense (SEAD)
    • 3.3.5. Others
  • 3.4. Global Next-Generation Autonomous Combat Aircraft Market Outlook, by Region, Value (US$ Bn), 2020-2033
    • 3.4.1. North America
    • 3.4.2. Europe
    • 3.4.3. Asia Pacific
    • 3.4.4. Latin America
    • 3.4.5. Middle East & Africa

4. North America Next-Generation Autonomous Combat Aircraft Market Outlook, 2020-2033

  • 4.1. North America Next-Generation Autonomous Combat Aircraft Market Outlook, by Platform, Value (US$ Bn), 2020-2033
    • 4.1.1. Unmanned Combat Aerial Vehicles (UCAVs)
    • 4.1.2. Collaborative Combat Aircraft (CCA)
    • 4.1.3. Loyal Wingman Aircraft
  • 4.2. North America Next-Generation Autonomous Combat Aircraft Market Outlook, by Propulsion, Value (US$ Bn), 2020-2033
    • 4.2.1. Jet Engine
    • 4.2.2. Hybrid-Electric Propulsion
    • 4.2.3. Electric Propulsion
  • 4.3. North America Next-Generation Autonomous Combat Aircraft Market Outlook, by Application, Value (US$ Bn), 2020-2033
    • 4.3.1. Intelligence, Surveillance & Reconnaissance (ISR)
    • 4.3.2. Combat Strike Missions
    • 4.3.3. Electronic Warfare
    • 4.3.4. Suppression of Enemy Air Defense (SEAD)
    • 4.3.5. Others
  • 4.4. North America Next-Generation Autonomous Combat Aircraft Market Outlook, by Country, Value (US$ Bn), 2020-2033
    • 4.4.1. U.S. Next-Generation Autonomous Combat Aircraft Market Outlook, by Platform, 2020-2033
    • 4.4.2. U.S. Next-Generation Autonomous Combat Aircraft Market Outlook, by Propulsion, 2020-2033
    • 4.4.3. U.S. Next-Generation Autonomous Combat Aircraft Market Outlook, by Application, 2020-2033
    • 4.4.4. Canada Next-Generation Autonomous Combat Aircraft Market Outlook, by Platform, 2020-2033
    • 4.4.5. Canada Next-Generation Autonomous Combat Aircraft Market Outlook, by Propulsion, 2020-2033
    • 4.4.6. Canada Next-Generation Autonomous Combat Aircraft Market Outlook, by Application, 2020-2033
  • 4.5. BPS Analysis/Market Attractiveness Analysis

5. Europe Next-Generation Autonomous Combat Aircraft Market Outlook, 2020-2033

  • 5.1. Europe Next-Generation Autonomous Combat Aircraft Market Outlook, by Platform, Value (US$ Bn), 2020-2033
    • 5.1.1. Unmanned Combat Aerial Vehicles (UCAVs)
    • 5.1.2. Collaborative Combat Aircraft (CCA)
    • 5.1.3. Loyal Wingman Aircraft
  • 5.2. Europe Next-Generation Autonomous Combat Aircraft Market Outlook, by Propulsion, Value (US$ Bn), 2020-2033
    • 5.2.1. Jet Engine
    • 5.2.2. Hybrid-Electric Propulsion
    • 5.2.3. Electric Propulsion
  • 5.3. Europe Next-Generation Autonomous Combat Aircraft Market Outlook, by Application, Value (US$ Bn), 2020-2033
    • 5.3.1. Intelligence, Surveillance & Reconnaissance (ISR)
    • 5.3.2. Combat Strike Missions
    • 5.3.3. Electronic Warfare
    • 5.3.4. Suppression of Enemy Air Defense (SEAD)
    • 5.3.5. Others
  • 5.4. Europe Next-Generation Autonomous Combat Aircraft Market Outlook, by Country, Value (US$ Bn), 2020-2033
    • 5.4.1. Germany Next-Generation Autonomous Combat Aircraft Market Outlook, by Platform, 2020-2033
    • 5.4.2. Germany Next-Generation Autonomous Combat Aircraft Market Outlook, by Propulsion, 2020-2033
    • 5.4.3. Germany Next-Generation Autonomous Combat Aircraft Market Outlook, by Application, 2020-2033
    • 5.4.4. Italy Next-Generation Autonomous Combat Aircraft Market Outlook, by Platform, 2020-2033
    • 5.4.5. Italy Next-Generation Autonomous Combat Aircraft Market Outlook, by Propulsion, 2020-2033
    • 5.4.6. Italy Next-Generation Autonomous Combat Aircraft Market Outlook, by Application, 2020-2033
    • 5.4.7. France Next-Generation Autonomous Combat Aircraft Market Outlook, by Platform, 2020-2033
    • 5.4.8. France Next-Generation Autonomous Combat Aircraft Market Outlook, by Propulsion, 2020-2033
    • 5.4.9. France Next-Generation Autonomous Combat Aircraft Market Outlook, by Application, 2020-2033
    • 5.4.10. U.K. Next-Generation Autonomous Combat Aircraft Market Outlook, by Platform, 2020-2033
    • 5.4.11. U.K. Next-Generation Autonomous Combat Aircraft Market Outlook, by Propulsion, 2020-2033
    • 5.4.12. U.K. Next-Generation Autonomous Combat Aircraft Market Outlook, by Application, 2020-2033
    • 5.4.13. Spain Next-Generation Autonomous Combat Aircraft Market Outlook, by Platform, 2020-2033
    • 5.4.14. Spain Next-Generation Autonomous Combat Aircraft Market Outlook, by Propulsion, 2020-2033
    • 5.4.15. Spain Next-Generation Autonomous Combat Aircraft Market Outlook, by Application, 2020-2033
    • 5.4.16. Russia Next-Generation Autonomous Combat Aircraft Market Outlook, by Platform, 2020-2033
    • 5.4.17. Russia Next-Generation Autonomous Combat Aircraft Market Outlook, by Propulsion, 2020-2033
    • 5.4.18. Russia Next-Generation Autonomous Combat Aircraft Market Outlook, by Application, 2020-2033
    • 5.4.19. Rest of Europe Next-Generation Autonomous Combat Aircraft Market Outlook, by Platform, 2020-2033
    • 5.4.20. Rest of Europe Next-Generation Autonomous Combat Aircraft Market Outlook, by Propulsion, 2020-2033
    • 5.4.21. Rest of Europe Next-Generation Autonomous Combat Aircraft Market Outlook, by Application, 2020-2033
  • 5.5. BPS Analysis/Market Attractiveness Analysis

6. Asia Pacific Next-Generation Autonomous Combat Aircraft Market Outlook, 2020-2033

  • 6.1. Asia Pacific Next-Generation Autonomous Combat Aircraft Market Outlook, by Platform, Value (US$ Bn), 2020-2033
    • 6.1.1. Unmanned Combat Aerial Vehicles (UCAVs)
    • 6.1.2. Collaborative Combat Aircraft (CCA)
    • 6.1.3. Loyal Wingman Aircraft
  • 6.2. Asia Pacific Next-Generation Autonomous Combat Aircraft Market Outlook, by Propulsion, Value (US$ Bn), 2020-2033
    • 6.2.1. Jet Engine
    • 6.2.2. Hybrid-Electric Propulsion
    • 6.2.3. Electric Propulsion
  • 6.3. Asia Pacific Next-Generation Autonomous Combat Aircraft Market Outlook, by Application, Value (US$ Bn), 2020-2033
    • 6.3.1. Intelligence, Surveillance & Reconnaissance (ISR)
    • 6.3.2. Combat Strike Missions
    • 6.3.3. Electronic Warfare
    • 6.3.4. Suppression of Enemy Air Defense (SEAD)
    • 6.3.5. Others
  • 6.4. Asia Pacific Next-Generation Autonomous Combat Aircraft Market Outlook, by Country, Value (US$ Bn), 2020-2033
    • 6.4.1. China Next-Generation Autonomous Combat Aircraft Market Outlook, by Platform, 2020-2033
    • 6.4.2. China Next-Generation Autonomous Combat Aircraft Market Outlook, by Propulsion, 2020-2033
    • 6.4.3. China Next-Generation Autonomous Combat Aircraft Market Outlook, by Application, 2020-2033
    • 6.4.4. Japan Next-Generation Autonomous Combat Aircraft Market Outlook, by Platform, 2020-2033
    • 6.4.5. Japan Next-Generation Autonomous Combat Aircraft Market Outlook, by Propulsion, 2020-2033
    • 6.4.6. Japan Next-Generation Autonomous Combat Aircraft Market Outlook, by Application, 2020-2033
    • 6.4.7. South Korea Next-Generation Autonomous Combat Aircraft Market Outlook, by Platform, 2020-2033
    • 6.4.8. South Korea Next-Generation Autonomous Combat Aircraft Market Outlook, by Propulsion, 2020-2033
    • 6.4.9. South Korea Next-Generation Autonomous Combat Aircraft Market Outlook, by Application, 2020-2033
    • 6.4.10. India Next-Generation Autonomous Combat Aircraft Market Outlook, by Platform, 2020-2033
    • 6.4.11. India Next-Generation Autonomous Combat Aircraft Market Outlook, by Propulsion, 2020-2033
    • 6.4.12. India Next-Generation Autonomous Combat Aircraft Market Outlook, by Application, 2020-2033
    • 6.4.13. Southeast Asia Next-Generation Autonomous Combat Aircraft Market Outlook, by Platform, 2020-2033
    • 6.4.14. Southeast Asia Next-Generation Autonomous Combat Aircraft Market Outlook, by Propulsion, 2020-2033
    • 6.4.15. Southeast Asia Next-Generation Autonomous Combat Aircraft Market Outlook, by Application, 2020-2033
    • 6.4.16. Rest of SAO Next-Generation Autonomous Combat Aircraft Market Outlook, by Platform, 2020-2033
    • 6.4.17. Rest of SAO Next-Generation Autonomous Combat Aircraft Market Outlook, by Propulsion, 2020-2033
    • 6.4.18. Rest of SAO Next-Generation Autonomous Combat Aircraft Market Outlook, by Application, 2020-2033
  • 6.5. BPS Analysis/Market Attractiveness Analysis

7. Latin America Next-Generation Autonomous Combat Aircraft Market Outlook, 2020-2033

  • 7.1. Latin America Next-Generation Autonomous Combat Aircraft Market Outlook, by Platform, Value (US$ Bn), 2020-2033
    • 7.1.1. Unmanned Combat Aerial Vehicles (UCAVs)
    • 7.1.2. Collaborative Combat Aircraft (CCA)
    • 7.1.3. Loyal Wingman Aircraft
  • 7.2. Latin America Next-Generation Autonomous Combat Aircraft Market Outlook, by Propulsion, Value (US$ Bn), 2020-2033
    • 7.2.1. Jet Engine
    • 7.2.2. Hybrid-Electric Propulsion
    • 7.2.3. Electric Propulsion
  • 7.3. Latin America Next-Generation Autonomous Combat Aircraft Market Outlook, by Application, Value (US$ Bn), 2020-2033
    • 7.3.1. Intelligence, Surveillance & Reconnaissance (ISR)
    • 7.3.2. Combat Strike Missions
    • 7.3.3. Electronic Warfare
    • 7.3.4. Suppression of Enemy Air Defense (SEAD)
    • 7.3.5. Others
  • 7.4. Latin America Next-Generation Autonomous Combat Aircraft Market Outlook, by Country, Value (US$ Bn), 2020-2033
    • 7.4.1. Brazil Next-Generation Autonomous Combat Aircraft Market Outlook, by Platform, 2020-2033
    • 7.4.2. Brazil Next-Generation Autonomous Combat Aircraft Market Outlook, by Propulsion, 2020-2033
    • 7.4.3. Brazil Next-Generation Autonomous Combat Aircraft Market Outlook, by Application, 2020-2033
    • 7.4.4. Mexico Next-Generation Autonomous Combat Aircraft Market Outlook, by Platform, 2020-2033
    • 7.4.5. Mexico Next-Generation Autonomous Combat Aircraft Market Outlook, by Propulsion, 2020-2033
    • 7.4.6. Mexico Next-Generation Autonomous Combat Aircraft Market Outlook, by Application, 2020-2033
    • 7.4.7. Argentina Next-Generation Autonomous Combat Aircraft Market Outlook, by Platform, 2020-2033
    • 7.4.8. Argentina Next-Generation Autonomous Combat Aircraft Market Outlook, by Propulsion, 2020-2033
    • 7.4.9. Argentina Next-Generation Autonomous Combat Aircraft Market Outlook, by Application, 2020-2033
    • 7.4.10. Rest of LATAM Next-Generation Autonomous Combat Aircraft Market Outlook, by Platform, 2020-2033
    • 7.4.11. Rest of LATAM Next-Generation Autonomous Combat Aircraft Market Outlook, by Propulsion, 2020-2033
    • 7.4.12. Rest of LATAM Next-Generation Autonomous Combat Aircraft Market Outlook, by Application, 2020-2033
  • 7.5. BPS Analysis/Market Attractiveness Analysis

8. Middle East & Africa Next-Generation Autonomous Combat Aircraft Market Outlook, 2020-2033

  • 8.1. Middle East & Africa Next-Generation Autonomous Combat Aircraft Market Outlook, by Platform, Value (US$ Bn), 2020-2033
    • 8.1.1. Unmanned Combat Aerial Vehicles (UCAVs)
    • 8.1.2. Collaborative Combat Aircraft (CCA)
    • 8.1.3. Loyal Wingman Aircraft
  • 8.2. Middle East & Africa Next-Generation Autonomous Combat Aircraft Market Outlook, by Propulsion, Value (US$ Bn), 2020-2033
    • 8.2.1. Jet Engine
    • 8.2.2. Hybrid-Electric Propulsion
    • 8.2.3. Electric Propulsion
  • 8.3. Middle East & Africa Next-Generation Autonomous Combat Aircraft Market Outlook, by Application, Value (US$ Bn), 2020-2033
    • 8.3.1. Intelligence, Surveillance & Reconnaissance (ISR)
    • 8.3.2. Combat Strike Missions
    • 8.3.3. Electronic Warfare
    • 8.3.4. Suppression of Enemy Air Defense (SEAD)
    • 8.3.5. Others
  • 8.4. Middle East & Africa Next-Generation Autonomous Combat Aircraft Market Outlook, by Country, Value (US$ Bn), 2020-2033
    • 8.4.1. GCC Next-Generation Autonomous Combat Aircraft Market Outlook, by Platform, 2020-2033
    • 8.4.2. GCC Next-Generation Autonomous Combat Aircraft Market Outlook, by Propulsion, 2020-2033
    • 8.4.3. GCC Next-Generation Autonomous Combat Aircraft Market Outlook, by Application, 2020-2033
    • 8.4.4. South Africa Next-Generation Autonomous Combat Aircraft Market Outlook, by Platform, 2020-2033
    • 8.4.5. South Africa Next-Generation Autonomous Combat Aircraft Market Outlook, by Propulsion, 2020-2033
    • 8.4.6. South Africa Next-Generation Autonomous Combat Aircraft Market Outlook, by Application, 2020-2033
    • 8.4.7. Egypt Next-Generation Autonomous Combat Aircraft Market Outlook, by Platform, 2020-2033
    • 8.4.8. Egypt Next-Generation Autonomous Combat Aircraft Market Outlook, by Propulsion, 2020-2033
    • 8.4.9. Egypt Next-Generation Autonomous Combat Aircraft Market Outlook, by Application, 2020-2033
    • 8.4.10. Nigeria Next-Generation Autonomous Combat Aircraft Market Outlook, by Platform, 2020-2033
    • 8.4.11. Nigeria Next-Generation Autonomous Combat Aircraft Market Outlook, by Propulsion, 2020-2033
    • 8.4.12. Nigeria Next-Generation Autonomous Combat Aircraft Market Outlook, by Application, 2020-2033
    • 8.4.13. Rest of Middle East Next-Generation Autonomous Combat Aircraft Market Outlook, by Platform, 2020-2033
    • 8.4.14. Rest of Middle East Next-Generation Autonomous Combat Aircraft Market Outlook, by Propulsion, 2020-2033
    • 8.4.15. Rest of Middle East Next-Generation Autonomous Combat Aircraft Market Outlook, by Application, 2020-2033
  • 8.5. BPS Analysis/Market Attractiveness Analysis

9. Competitive Landscape

  • 9.1. Company Vs Segment Heatmap
  • 9.2. Company Market Share Analysis, 2025
  • 9.3. Competitive Dashboard
  • 9.4. Company Profiles
    • 9.4.1. Lockheed Martin Corporation
      • 9.4.1.1. Company Overview
      • 9.4.1.2. Product Portfolio
      • 9.4.1.3. Financial Overview
      • 9.4.1.4. Business Strategies and Developments
    • 9.4.2. Northrop Grumman Corporation
    • 9.4.3. The Boeing Company
    • 9.4.4. General Atomics Aeronautical Systems, Inc.
    • 9.4.5. BAE Systems plc
    • 9.4.6. RTX Corporation
    • 9.4.7. Kratos Defense & Security Solutions, Inc.
    • 9.4.8. Saab AB
    • 9.4.9. Airbus Defence and Space
    • 9.4.10. Turkish Aerospace Industries

10. Appendix

  • 10.1. Research Methodology
  • 10.2. Report Assumptions
  • 10.3. Acronyms and Abbreviations
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