+353-1-416-8900REST OF WORLD
+44-20-3973-8888REST OF WORLD
1-917-300-0470EAST COAST U.S
1-800-526-8630U.S. (TOLL FREE)
New

Autonomous Ships Market - Global Industry Size, Share, Trends, Opportunity, and Forecast, 2021-2031

  • PDF Icon

    Report

  • 181 Pages
  • January 2026
  • Region: Global
  • TechSci Research
  • ID: 5702046
Free Webex Call
10% Free customization
Free Webex Call

Speak directly to the analyst to clarify any post sales queries you may have.

10% Free customization

This report comes with 10% free customization, enabling you to add data that meets your specific business needs.

The Global Autonomous Ships Market is projected to expand from USD 9.61 Billion in 2025 to USD 15.46 Billion by 2031, registering a CAGR of 8.25%. This market sector comprises surface vessels engineered to function independently via artificial intelligence, sensor fusion, and automated navigation systems. The primary factors propelling this growth include the financial necessity to lower operational expenses by reducing crew numbers and the critical imperative to improve safety by minimizing human error, which is a major cause of maritime accidents. Furthermore, the maritime industry is adopting autonomous technologies to enhance fuel efficiency and satisfy strict decarbonization goals through optimized route management and energy consumption.

Data from BIMCO indicates that the global container ship fleet capacity grew by 11 percent in 2024, a rapid expansion that worsens existing seafarer shortages and highlights the need for autonomous solutions to maintain global trade flows. Despite this robust demand, a major obstacle hindering market growth is the lack of a comprehensive international regulatory framework. The current absence of standardized legal protocols regarding liability and compliance for unmanned vessels creates significant uncertainty for operators and insurers.

Market Drivers

Increased defense spending on unmanned naval vessels acts as a primary growth driver, as naval forces focus on acquiring cost-effective, long-endurance platforms for surveillance and asymmetric warfare. Governments are actively integrating autonomous systems to expand operational capabilities while lowering physical risks to personnel, effectively subsidizing the development of technologies that subsequently benefit the commercial sector. For instance, the Congressional Research Service reported in March 2025 in the 'Navy Large Unmanned Surface and Undersea Vehicles' report that the US Navy requested $101.8 million in R&D funding specifically for the Medium Unmanned Surface Vehicle program. This significant public investment hastens the maturation of automated navigation systems, establishing a strong technological base for the wider maritime industry.

Simultaneously, the drive to optimize operational costs and crew expenses pushes commercial operators toward autonomous solutions that improve fuel efficiency and reduce overheads. Automated systems facilitate precise route planning and energy management, directly addressing the maritime sector's need to protect profit margins against volatile fuel prices and rising labor costs. In May 2025, Orca AI announced in 'Orca AI Raises $72.5M to Advance Autonomous Shipping' that their AI-driven navigation platform achieved an average of $100,000 in annual fuel savings per vessel. This economic incentive attracts substantial private investment, as shown by Blue Water Autonomy securing $50 million in August 2025 to scale its manufacturing, highlighting the strong financial viability of unmanned maritime operations.

Market Challenges

The lack of a comprehensive international regulatory framework remains a major barrier restricting the commercial scalability of the Global Autonomous Ships Market. Although technological capabilities for unmanned vessels have matured, the absence of standardized legal protocols introduces substantial liability risks for shipowners and operators. Current maritime laws assume the presence of a human crew for safety and accountability, leaving autonomous systems in a legal gray area regarding accident liability and insurance coverage. Consequently, marine insurers cannot accurately calculate risk premiums for unmanned voyages, resulting in either excessive costs or denial of coverage, which discourages maritime companies from committing the capital needed for fleet-wide deployment.

This regulatory delay creates a clearly defined timeline of postponed market maturation. In 2024, the International Maritime Organization (IMO) Maritime Safety Committee revised its roadmap, indicating that the mandatory Maritime Autonomous Surface Ships (MASS) Code is not expected to take effect until January 1, 2032. This projected eight-year gap means the industry must operate without a binding international legal standard for the near future. Such prolonged regulatory ambiguity directly hampers market growth, as commercial operators are compelled to delay significant investments in autonomous technologies until a stable and enforceable legal environment is fully established.

Market Trends

The rise of Shore-Based Remote Operations Centers marks a fundamental shift in maritime operational models, transferring command execution from shipboard bridges to centralized onshore facilities. This architecture enables operators to manage multiple vessels simultaneously, maximizing the utilization of master mariners while removing crews from high-risk environments. The transition supports a scalable control framework where fleet-wide data is synthesized for real-time decision-making, effectively separating vessel navigation from physical presence. As reported by GeoConnexion in November 2025, Fugro established a new communications hub in Kuala Lumpur to remotely control offshore survey activities, explicitly aiming to convert hazardous offshore positions into secure onshore roles.

Concurrently, the convergence of autonomous systems with electric and hybrid propulsion is accelerating as engineers exploit the inherent compatibility between electric drivetrains and digital control architectures. Electric motors provide the instantaneous response times needed for high-precision AI maneuvering, making them the preferred propulsion choice for next-generation automated vessels, particularly in short-sea networks. This technological synergy drives substantial efficiency gains alongside automation; for example, the Frostabåten project, reported by Maritimt Magasin in December 2025, utilized an electric hydrofoil ferry to demonstrate an energy consumption reduction of up to 80 percent compared to traditional hulls, confirming the performance benefits of integrating green propulsion with advanced vessel systems.

Key Players Profiled in the Autonomous Ships Market

  • DNV AS
  • Kongsberg Gruppen ASA
  • Rolls-Royce PLC
  • Nippon Yusen Kabushiki Kaisha
  • MITSUI E&S Co., Ltd.
  • Wartsila Corporation
  • Hanwha Corporation
  • Vigor Industrial LLC
  • Praxis Automation Technology B.V.
  • ABB Ltd.

Report Scope

In this report, the Global Autonomous Ships Market has been segmented into the following categories:

Autonomous Ships Market, by Type:

  • Partially Autonomous
  • Remotely Controlled Ship
  • Fully Autonomous

Autonomous Ships Market, by Application:

  • Commercial
  • Military

Autonomous Ships Market, by Region:

  • North America
  • Europe
  • Asia-Pacific
  • South America
  • Middle East & Africa

Competitive Landscape

Company Profiles: Detailed analysis of the major companies present in the Global Autonomous Ships Market.

Available Customization

The analyst offers customization according to your specific needs. The following customization options are available for the report:
  • Detailed analysis and profiling of additional market players (up to five).

This product will be delivered within 1-3 business days.

Table of Contents

1. Product Overview
1.1. Market Definition
1.2. Scope of the Market
1.2.1. Markets Covered
1.2.2. Years Considered for Study
1.2.3. Key Market Segmentations
2. Research Methodology
2.1. Objective of the Study
2.2. Baseline Methodology
2.3. Key Industry Partners
2.4. Major Association and Secondary Sources
2.5. Forecasting Methodology
2.6. Data Triangulation & Validation
2.7. Assumptions and Limitations
3. Executive Summary
3.1. Overview of the Market
3.2. Overview of Key Market Segmentations
3.3. Overview of Key Market Players
3.4. Overview of Key Regions/Countries
3.5. Overview of Market Drivers, Challenges, Trends
4. Voice of Customer
5. Global Autonomous Ships Market Outlook
5.1. Market Size & Forecast
5.1.1. By Value
5.2. Market Share & Forecast
5.2.1. By Type (Partially Autonomous, Remotely Controlled Ship, Fully Autonomous)
5.2.2. By Application (Commercial, Military)
5.2.3. By Region
5.2.4. By Company (2025)
5.3. Market Map
6. North America Autonomous Ships Market Outlook
6.1. Market Size & Forecast
6.1.1. By Value
6.2. Market Share & Forecast
6.2.1. By Type
6.2.2. By Application
6.2.3. By Country
6.3. North America: Country Analysis
6.3.1. United States Autonomous Ships Market Outlook
6.3.2. Canada Autonomous Ships Market Outlook
6.3.3. Mexico Autonomous Ships Market Outlook
7. Europe Autonomous Ships Market Outlook
7.1. Market Size & Forecast
7.1.1. By Value
7.2. Market Share & Forecast
7.2.1. By Type
7.2.2. By Application
7.2.3. By Country
7.3. Europe: Country Analysis
7.3.1. Germany Autonomous Ships Market Outlook
7.3.2. France Autonomous Ships Market Outlook
7.3.3. United Kingdom Autonomous Ships Market Outlook
7.3.4. Italy Autonomous Ships Market Outlook
7.3.5. Spain Autonomous Ships Market Outlook
8. Asia-Pacific Autonomous Ships Market Outlook
8.1. Market Size & Forecast
8.1.1. By Value
8.2. Market Share & Forecast
8.2.1. By Type
8.2.2. By Application
8.2.3. By Country
8.3. Asia-Pacific: Country Analysis
8.3.1. China Autonomous Ships Market Outlook
8.3.2. India Autonomous Ships Market Outlook
8.3.3. Japan Autonomous Ships Market Outlook
8.3.4. South Korea Autonomous Ships Market Outlook
8.3.5. Australia Autonomous Ships Market Outlook
9. Middle East & Africa Autonomous Ships Market Outlook
9.1. Market Size & Forecast
9.1.1. By Value
9.2. Market Share & Forecast
9.2.1. By Type
9.2.2. By Application
9.2.3. By Country
9.3. Middle East & Africa: Country Analysis
9.3.1. Saudi Arabia Autonomous Ships Market Outlook
9.3.2. UAE Autonomous Ships Market Outlook
9.3.3. South Africa Autonomous Ships Market Outlook
10. South America Autonomous Ships Market Outlook
10.1. Market Size & Forecast
10.1.1. By Value
10.2. Market Share & Forecast
10.2.1. By Type
10.2.2. By Application
10.2.3. By Country
10.3. South America: Country Analysis
10.3.1. Brazil Autonomous Ships Market Outlook
10.3.2. Colombia Autonomous Ships Market Outlook
10.3.3. Argentina Autonomous Ships Market Outlook
11. Market Dynamics
11.1. Drivers
11.2. Challenges
12. Market Trends & Developments
12.1. Mergers & Acquisitions (If Any)
12.2. Product Launches (If Any)
12.3. Recent Developments
13. Global Autonomous Ships Market: SWOT Analysis
14. Porter's Five Forces Analysis
14.1. Competition in the Industry
14.2. Potential of New Entrants
14.3. Power of Suppliers
14.4. Power of Customers
14.5. Threat of Substitute Products
15. Competitive Landscape
15.1. DNV AS
15.1.1. Business Overview
15.1.2. Products & Services
15.1.3. Recent Developments
15.1.4. Key Personnel
15.1.5. SWOT Analysis
15.2. Kongsberg Gruppen ASA
15.3. Rolls-Royce plc
15.4. Nippon Yusen Kabushiki Kaisha
15.5. MITSUI E&S Co., Ltd.
15.6. Wartsila Corporation
15.7. Hanwha Corporation
15.8. Vigor Industrial LLC
15.9. Praxis Automation Technology B.V.
15.10. ABB Ltd.
16. Strategic Recommendations

Companies Mentioned

The key players profiled in this Autonomous Ships market report include:
  • DNV AS
  • Kongsberg Gruppen ASA
  • Rolls-Royce PLC
  • Nippon Yusen Kabushiki Kaisha
  • MITSUI E&S Co., Ltd.
  • Wartsila Corporation
  • Hanwha Corporation
  • Vigor Industrial LLC
  • Praxis Automation Technology B.V.
  • ABB Ltd.

Table Information