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Artificial Intelligence (AI) in Aviation Market By Offering, By Technology (Machine Learning, Natural Language Processing, Context Awareness Computing, and Computer Vision), By Equipment, By Application - Global Industry Outlook, Key Companies (Boeing, Airbus, NVIDIA, and others), Trends and Forecast 2024-2033

Published on : September-2024  Report Code : RC-1093  Pages Count : 293  Report Format : PDF
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Market Overview

The Global Artificial Intelligence (AI) in Aviation Market is projected to reach USD 3.0 billion in 2024 and grow at a compound annual growth rate of 37.3% from there until 2033 to reach a value of USD 52.7 billion.

Artificial intelligence in aviation is known as the usage of computer systems to perform tasks that generally demand human intelligence, like piloting aircraft, managing air traffic, and analyzing data. 

AI improve safety, efficiency, and decision-making in aviation by automating processes, detecting anomalies, and providing insights from a large volume of information. It allows development such as autonomous flight, predictive maintenance, and personalized passenger experiences, transforming the industry.
 
Global Artificial Intelligence (AI) in Aviation Market Growth Analysis
 
Aviation continues to embrace artificial intelligence-powered technologies, revolutionizing flight operations, maintenance, customer experience, and aircraft safety. AI solutions have already proven useful for predictive maintenance, optimizing flight routes and improving aircraft safety; while also helping airlines reduce downtime and delays. When airlines adopt AI solutions they typically experience efficiency gains and cost reduction.

Recent advances in AI are providing smarter customer interactions. Chatbots and virtual assistants powered by AI are improving customer service, providing real-time updates, and streamlining booking processes - not only improving the user experience but also cutting operational costs by automating tasks previously completed manually.

AI's role in flight safety has grown increasingly significant with innovations in autonomous flight technology. AI systems assist pilots by providing real-time insights and improving decision-making to increase safety and reliability of air travel. AI systems are also increasingly utilized for air traffic management purposes to smooth operations and decrease congestion to optimize airspace usage more effectively.

AI aviation market opportunities are quickly expanding as companies invest in machine learning, computer vision and data analytics technologies. Real-time analysis tools for decision-making has prompted collaboration between aviation stakeholders and tech firms; AI is expected to play an increasingly crucial role in making aviation more eco-friendly, efficient and passenger-friendly over time.

AI adoption within aviation has experienced rapid expansion over time. By 2023, over 50% of major airlines had implemented AI solutions into their operations for predictive maintenance, route optimization and customer service purposes. Furthermore, approximately 30% of global airports use AI technologies to enhance security measures while streamlining passenger check-in procedures to improve operational efficiencies and increase passenger comfort.

The US Artificial Intelligence (AI) in Aviation Market

The US Artificial Intelligence (AI) in Aviation Market is projected to reach USD 1.1 billion in 2024 at a compound annual growth rate of 34.9% over its forecast period.

The US  Artificial Intelligence (AI) in Aviation Market Growth Analysis

The US provides many growth opportunities in the AI aviation market through the development in autonomous flight technologies, better predictive maintenance solutions, and the integration of AI in air traffic management. In addition, the growing investments in smart airport technologies and the rising demand for personalized passenger experiences present many avenues for innovation and expansion within the aviation sector.

Further, the growth driver in the US AI aviation market is the growth in demand for operational efficiency and safety enhancements through advanced technologies. However, a major restraint is the high cost of AI implementation and integration, which can create challenges for smaller airlines and operators. Regulatory hurdles and concerns over data privacy also contribute to the complexities of adopting AI solutions.

Key Takeaways

  • Market Growth: The Artificial Intelligence (AI) in Aviation Market size is expected to grow by 48.6 billion, at a CAGR of 37.3% during the forecasted period of 2025 to 2033.
  • By Offering: The software segment is anticipated to get the majority share of the Artificial Intelligence (AI) in Aviation Market in 2024.
  • By Technology: Machine Learning segment is expected to be leading the market in 2024
  • By Application: The smart maintenance segment is expected to get the largest revenue share in 2024 in the Artificial Intelligence (AI) in Aviation Market.
  • Regional Insight: North America is expected to hold a 42.2% share of revenue in the Global Artificial Intelligence (AI) in Aviation Market in 2024.
  • Use Cases: Some of the use cases of Artificial Intelligence (AI) in Aviation include predictive maintenance, air traffic management, and more.

Use Cases

  • Predictive Maintenance: AI analyzes aircraft sensor data to predict equipment failures before they occur, as well as downtime and maintenance costs.
  • Flight Route Optimization: AI optimizes flight paths by considering variables like weather, air traffic, and fuel efficiency, creating cost savings and reduced environmental impact.
  • Air Traffic Management: AI improves air traffic control systems, allowing real-time data processing for more efficient aircraft management, reducing delays, and improving safety.
  • Customer Experience: AI-powered chatbots & virtual assistants with advance customer service by handling inquiries, automating bookings, and providing personalized travel recommendations.

Market Dynamic

Driving Factors

Operational Efficiency
AI allows airlines and airports to optimize processes like flight scheduling, predictive maintenance, and fuel management, leading to cost reductions and enhanced operational efficiency.

Enhanced Passenger Experience
AI enhances customer interactions through personalized services, chatbots, and real-time flight updates, which improves passenger satisfaction and loyalty, driving further market growth.

Restraints

High Implementation Costs
The integration of AI technologies demands significant upfront investment in infrastructure, software, and skilled personnel, which can be a barrier for many airlines and airports, especially smaller ones.

Data Privacy and Security Concerns
The usage of AI involves handling utilization amounts of sensitive passenger and operational data, creating concerns around cybersecurity and data privacy, which can limit adoption due to regulatory and ethical challenges.

Opportunities

Automation of Ground Operations
AI can simplify airport operations like baggage handling, check-in, and security checks, minimizing human error, enhancing efficiency, and improving the overall passenger experience.

AI-Powered Autonomous Aircraft
The development of autonomous and AI-driven drones or aircraft for cargo transport and even passenger flights provides a major future opportunity, potentially transforming aviation logistics and transportation.

Trends

Integration of AI in Air Traffic Management
AI is being highly used to support air traffic controllers with real-time decision-making, optimizing flight routes, enhancing safety, and reducing congestion at airports.

AI-Driven Customer Personalization
Airlines are using AI to provide hyper-personalized customer experiences, like customized flight offers, in-flight services, and post-travel recommendations, enhancing customer engagement and loyalty.

Research Scope and Analysis

By Offering

The software segment is anticipated to lead the artificial intelligence (AI) aviation market throughout the forecast period, driven by growth in the investments in AI-based software solutions. These software applications are becoming highly important for many aviation functions, like flight operations, surveillance, and airport management.

AI-based software uses a range of program interfaces, like computer vision, machine learning, natural language processing, sensor data, and speech recognition, to enhance efficiency and decision-making across aviation operations. As airlines and airports continue to look for ways to optimize performance, lower costs, and improve safety, the need for AI-powered software solutions will keep rising, which is expected to significantly influence the growth and transformation of the aviation industry, making it a major factor in the sector's technological advancements.

By Technology

Machine learning is the most widely applied artificial intelligence technique in the aviation industry due to its powerful ability to process vast data, recognize patterns, and predict outcomes, which makes it especially useful for key applications like predictive maintenance, flight route optimization, and the development of autonomous systems. 

By using machine learning algorithms, aviation companies can enhance the accuracy of forecasts, improve decision-making processes, and allow systems to adapt in real-time to changing conditions. These capabilities are important for advancing aviation technology, boosting operational efficiency, and ensuring smoother, more reliable operations. Machine learning’s role in analyzing complex data and optimizing performance makes it a cornerstone of innovation in the aviation industry.

By Equipment

In terms of equipment, autocollimator plays a significant role in the growth of the artificial intelligence (AI) aviation market during the forecast period by providing precise optical measurements important for aircraft alignment and calibration, which is used to measure angles and displacements with high accuracy, making it vital for tasks like the calibration of flight instruments and the alignment of aircraft components. With the higher complexity of modern aircraft and the demand for higher safety standards, the demand for precise measurements has become more significant. 

Autocollimators improve the capabilities of AI systems by supplying reliable data that can be analyzed to improve predictive maintenance & operational efficiency. By integrating autocollimators with AI technologies, aviation companies can enhance the monitor aircraft performance, identify potential issues before they cause failures, and optimize maintenance schedules. 

This synergy between autocollimators and AI not only helps in maintaining the safety and reliability of aircraft but also supports the industry's drive towards more automated and intelligent aviation systems, further driving innovation and growth in the AI aviation market.

By Application

Smart maintenance is the most important application of artificial intelligence (AI) in the aviation market and is expected to lead the market with a maximum share in 2024. AI-powered systems use predictive analytics to constantly monitor the health of aircraft, helping to identify potential issues before they lead to breakdowns. By forecasting these problems in advance, airlines can schedule repairs proactively, which highly reduces downtime and operational costs, which not only improves the efficiency of airline operations but also enhances safety and reliability by securing unexpected failures.

Global Artificial Intelligence (AI) in Aviation Market Application Share Analysis

With timely maintenance, AI ensures that repairs are completed before they lead into larger issues, keeping aircraft in optimal condition. Also, smart maintenance powered by AI plays a crucial role in maintaining smooth, cost-effective operations while also ensuring passenger safety and operational dependability.

The Artificial Intelligence (AI) in Aviation Market Report is segmented on the basis of the following:

By Offering

  • Hardware
    • Process
    • Memory
    • Networks
  • Software
    • AI Platform
    • AI Solution
  • Services
    • Integration & Development
    • Support & Maintenace

By Technology

  • Machine Learning
    • Deep Learning
    • Supervised Learning
    • Semi-supervised Learning
    • Unsupervised Learning
    • Reinforcement Learning
  • Natural Language Processing
  • Context Awareness Computing
  • Computer Vision

By Equipment

  • Autocollimator
  • Profile Projector
  • Measuring Microscope
  • Optical Digitizers & Scanners (ODS)
  • Co-ordinate Measuring Machine (CMM)
  • Vision Measuring Machine (VMM)

By Application

  • Virtual Assistants
  • Smart Maintenance
  • Manufacturing
  • Training
  • Others

Regional Analysis

North America is projected to account for over 42.2% of the revenue in the artificial intelligence (AI) aviation market in 2024, which is largely owing to growing industrialization and a strong technological infrastructure that places a strong emphasis on innovation. According to data from the United Nations Industrial Development Organization, industrial sectors like mining, electricity, and manufacturing have seen a 2.3% increase, which is creating a favorable environment for AI adoption across numerous sectors, like aviation, where advanced technology plays a critical role in enhancing efficiency and safety.


Further, the well-established air transport infrastructure in the United States, which includes areas like aircraft cabin interiors, drives the expansion of AI in the aviation sector. The growing number of air travelers in Canada also contributes to this growth. According to the International Air Transport Association, Canada is projected to see a 51% growth in air travel by 2028, which is also a major factor driving the adoption of AI technologies in aviation, as airlines look to optimize operations, improves passenger experiences, and enhance safety standards.

By Region

North America
  • The U.S.
  • Canada
Europe
  • Germany
  • The U.K.
  • France
  • Italy
  • Russia
  • Spain
  • Benelux
  • Nordic
  • Rest of Europe
Asia-Pacific
  • China
  • Japan
  • South Korea
  • India
  • ANZ
  • ASEAN
  • Rest of Asia-Pacific
Latin America
  • Brazil
  • Mexico
  • Argentina
  • Colombia
  • Rest of Latin America
Middle East & Africa
  • Saudi Arabia
  • UAE
  • South Africa
  • Israel
  • Egypt
  • Rest of MEA

Competitive Landscape

The competitive landscape of the artificial intelligence (AI) aviation market is characterized by a distinct array of players, like established technology firms, specialized AI developers, and traditional aviation companies. These organizations are highly collaborating to innovate and improve AI solutions customized for various aviation applications, like predictive maintenance, air traffic management, and passenger services. As the need for smarter and more efficient aviation systems rises, companies are aiming on R&D to stay ahead. In addition, strategic partnerships and mergers are becoming common as organizations look to leverage each other's expertise and resources to drive growth and improve their market positioning.

Some of the prominent players in the Global Artificial Intelligence (AI) in Aviation are
  • Boeing
  • Airbus
  • NVIDIA
  • IBM Corp
  • Thales Group
  • Advanced Micro Devices Inc
  • Intel Corp
  • General Electric
  • Garmin
  • Microsoft
  • Other Key Players

Recent Developments

  • In September 2024, GE Aerospace announced that its GEnx commercial aviation engine achieved two billion flight hours with South Asian airlines, which has been instrumental in supporting South Asia’s aviation growth., and is also a testament to its engineering excellence and technology maturity
  • In March 2024, the national carrier of the State of Qatar launched its holographic virtual cabin crew, Sama 2.0. Qatar Airways is the world’s first airline to develop an Artificial Intelligence engineered for digital human cabin crew to help its passengers in developing curated travel experiences.
  • In February 2024, Helisul Aviation reported its selection of Daedalean’s PilotEye traffic awareness system for its fleet. Under the terms of the deal, Daedalean’s PilotEye, which integrates automatic dependent surveillance-broadcast (ADS-B) with AI-enabled visual detection of non-cooperative traffic would be the first AI-enabled system to be installed on an entire fleet of aircraft.
  • In December 2023, British Airways (BA) unveiled that the company focuses on to utilize AI to automate parts of its business, including the maintenance of its aircraft. Further, the airline company also plans to update its IT infrastructure & utilize AI tools to predict when a plane is likely to develop a fault, which will enable it to make preemptive repairs, rather than waiting for failures to be identified when passengers are on board, hopefully resulting in fewer delays.
  • In October 2023, Air-Guardian, a system designed by researchers at the MIT Computer Science and Artificial Intelligence Laboratory (CSAIL). As modern pilots grapple with an onslaught of information from various monitors, mainly during important moments, the Air-Guardian acts as a proactive copilot; a partnership between human and machine, rooted in understanding attention.

Report Details

Report Characteristics
Market Size (2024) USD 3.0 Bn
Forecast Value (2033) USD 52.7 Bn
CAGR (2024-2033) 37.3%
Historical Data 2018 – 2023
The US Market Size (2024) USD 1.1 Bn
Forecast Data 2025 – 2033
Base Year 2023
Estimate Year 2024
Report Coverage Market Revenue Estimation, Market Dynamics, Competitive Landscape, Growth Factors and etc.
Segments Covered By Offering (Hardware, Software, and Services), By Technology (Machine Learning, Natural Language Processing, Context Awareness Computing, and Computer Vision), By Equipment (Autocollimator, Profile Projector, Measuring Microscope, Optical Digitizers & Scanners (ODS), Co-ordinate Measuring Machine (CMM), Vision Measuring Machine (VMM)), By Application (Virtual Assistants, Smart Maintenance, Manufacturing, Training, and Others)
Regional Coverage North America – The US and Canada; Europe – Germany, The UK, France, Russia, Spain, Italy, Benelux, Nordic, & Rest of Europe; Asia- Pacific– China, Japan, South Korea, India, ANZ, ASEAN, Rest of APAC; Latin America – Brazil, Mexico, Argentina, Colombia, Rest of Latin America; Middle East & Africa – Saudi Arabia, UAE, South Africa, Turkey, Egypt, Israel, & Rest of MEA
Prominent Players Boeing, Airbus, NVIDIA, IBM Corp, Thales Group, Advanced Micro Devices Inc, Intel Corp, General Electric, Garmin, Microsoft, and Other Key Players
Purchase Options We have three licenses to opt for: Single User License (Limited to 1 user), Multi-User License (Up to 5 Users) and Corporate Use License (Unlimited User) along with free report customization equivalent to 0 analyst working days, 3 analysts working days and 5 analysts working days respectively.

 

Frequently Asked Questions

  • How big is the Global Artificial Intelligence (AI) in Aviation Market?

    The Global Artificial Intelligence (AI) in Aviation Market size is expected to reach a value of USD 3.0 billion in 2024 and is expected to reach USD 52.7 billion by the end of 2033.

  • Which region accounted for the largest Global Artificial Intelligence (AI) in Aviation Market?

    North America is expected to have the largest market share in the Global Artificial Intelligence (AI) in Aviation Market with a share of about 42.2% in 2024.

  • How big is the Artificial Intelligence (AI) in Aviation Market in the US?

    The Artificial Intelligence (AI) in Aviation Market in the US is expected to reach USD 1.1 billion in 2024.

  • Who are the key players in the Global Artificial Intelligence (AI) in Aviation Market?

    Some of the major key players in the Global Artificial Intelligence (AI) in Aviation Market are Boeing, Airbus, NVIDIA, and others.

  • What is the growth rate in the Global Artificial Intelligence (AI) in Aviation Market?

    The market is growing at a CAGR of 37.3 percent over the forecasted period.

  • Contents

      1.Introduction
        1.1.Objectives of the Study
        1.2.Market Scope
        1.3.Market Definition and Scope
      2.Artificial Intelligence (AI) in Aviation Market Overview
        2.1.Global Artificial Intelligence (AI) in Aviation Market Overview by Type
        2.2.Global Artificial Intelligence (AI) in Aviation Market Overview by Application
      3.Artificial Intelligence (AI) in Aviation Market Dynamics, Opportunity, Regulations, and Trends Analysis
        3.1.Market Dynamics
          3.1.1.Artificial Intelligence (AI) in Aviation Market Drivers
          3.1.2.Artificial Intelligence (AI) in Aviation Market Opportunities
          3.1.3.Artificial Intelligence (AI) in Aviation Market Restraints
          3.1.4.Artificial Intelligence (AI) in Aviation Market Challenges
        3.2.Emerging Trend/Technology
        3.3.PESTLE Analysis
        3.4.PORTER'S Five Forces Analysis
        3.5.Technology Roadmap
        3.6.Opportunity Map Analysis
        3.7.Case Studies
        3.8.Opportunity Orbits
        3.9.Pricing Analysis
        3.10.Ecosystem Analysis
        3.11.Supply/Value Chain Analysis
        3.12.Covid-19 & Recession Impact Analysis
        3.13.Product/Brand Comparison
      4.Global Artificial Intelligence (AI) in Aviation Market Value ((US$ Mn)), Share (%), and Growth Rate (%) Comparison by By Offering, 2017-2032
        4.1.Global Artificial Intelligence (AI) in Aviation Market Analysis by By Offering: Introduction
        4.2.Market Size and Forecast by Region
        4.3.Hardware
        4.4.Software
        4.5.Services
      5.Global Artificial Intelligence (AI) in Aviation Market Value ((US$ Mn)), Share (%), and Growth Rate (%) Comparison by By Technology, 2017-2032
        5.1.Global Artificial Intelligence (AI) in Aviation Market Analysis by By Technology: Introduction
        5.2.Market Size and Forecast by Region
        5.3.Machine Learning
        5.4.Natural Language Processing
        5.5.Context Awareness Computing
        5.6.Computer Vision
      6.Global Artificial Intelligence (AI) in Aviation Market Value ((US$ Mn)), Share (%), and Growth Rate (%) Comparison by By Equipment, 2017-2032
        6.1.Global Artificial Intelligence (AI) in Aviation Market Analysis by By Equipment: Introduction
        6.2.Market Size and Forecast by Region
        6.3.Autocollimator
        6.4.Profile Projector
        6.5.Measuring Microscope
        6.6.Optical Digitizers & Scanners (ODS)
        6.7.Co-ordinate Measuring Machine (CMM)
        6.8.Vision Measuring Machine (VMM)
      7.Global Artificial Intelligence (AI) in Aviation Market Value ((US$ Mn)), Share (%), and Growth Rate (%) Comparison by By Application, 2017-2032
        7.1.Global Artificial Intelligence (AI) in Aviation Market Analysis by By Application: Introduction
        7.2.Market Size and Forecast by Region
        7.3.Virtual Assistants
        7.4.Smart Maintenance
        7.5.Manufacturing
        7.6.Training
        7.7.Others
      10.Global Artificial Intelligence (AI) in Aviation Market Value ((US$ Mn)), Share (%), and Growth Rate (%) Comparison by Region, 2017-2032
        10.1.North America
          10.1.1.North America Artificial Intelligence (AI) in Aviation Market: Regional Analysis, 2017-2032
            10.1.1.1.The US
            10.1.1.2.Canada
        10.2.1.Europe
          10.2.1.Europe Artificial Intelligence (AI) in Aviation Market: Regional Trend Analysis
            10.2.1.1.Germany
            10.2.1.2.France
            10.2.1.3.UK
            10.2.1.4.Russia
            10.2.1.5.Italy
            10.2.1.6.Spain
            10.2.1.7.Nordic
            10.2.1.8.Benelux
            10.2.1.9.Rest of Europe
        10.3.Asia-Pacific
          10.3.1.Asia-Pacific Artificial Intelligence (AI) in Aviation Market: Regional Analysis, 2017-2032
            10.3.1.1.China
            10.3.1.2.Japan
            10.3.1.3.South Korea
            10.3.1.4.India
            10.3.1.5.ANZ
            10.3.1.6.ASEAN
            10.3.1.7.Rest of Asia-Pacifc
        10.4.Latin America
          10.4.1.Latin America Artificial Intelligence (AI) in Aviation Market: Regional Analysis, 2017-2032
            10.4.1.1.Brazil
            10.4.1.2.Mexico
            10.4.1.3.Argentina
            10.4.1.4.Colombia
            10.4.1.5.Rest of Latin America
        10.5.Middle East and Africa
          10.5.1.Middle East and Africa Artificial Intelligence (AI) in Aviation Market: Regional Analysis, 2017-2032
            10.5.1.1.Saudi Arabia
            10.5.1.2.UAE
            10.5.1.3.South Africa
            10.5.1.4.Israel
            10.5.1.5.Egypt
            10.5.1.6.Turkey
            10.5.1.7.Rest of MEA
      11.Global Artificial Intelligence (AI) in Aviation Market Company Evaluation Matrix, Competitive Landscape, Market Share Analysis, and Company Profiles
        11.1.Market Share Analysis
        11.2.Company Profiles
          11.3.1.Company Overview
          11.3.2.Financial Highlights
          11.3.3.Product Portfolio
          11.3.4.SWOT Analysis
          11.3.5.Key Strategies and Developments
        11.4.Boeing
          11.4.1.Company Overview
          11.4.2.Financial Highlights
          11.4.3.Product Portfolio
          11.4.4.SWOT Analysis
          11.4.5.Key Strategies and Developments
        11.5.Airbus
          11.5.1.Company Overview
          11.5.2.Financial Highlights
          11.5.3.Product Portfolio
          11.5.4.SWOT Analysis
          11.5.5.Key Strategies and Developments
        11.6.NVIDIA
          11.6.1.Company Overview
          11.6.2.Financial Highlights
          11.6.3.Product Portfolio
          11.6.4.SWOT Analysis
          11.6.5.Key Strategies and Developments
        11.7.IBM Corp
          11.7.1.Company Overview
          11.7.2.Financial Highlights
          11.7.3.Product Portfolio
          11.7.4.SWOT Analysis
          11.7.5.Key Strategies and Developments
        11.8.Thales Group
          11.8.1.Company Overview
          11.8.2.Financial Highlights
          11.8.3.Product Portfolio
          11.8.4.SWOT Analysis
          11.8.5.Key Strategies and Developments
        11.9.Advanced Micro Devices Inc
          11.9.1.Company Overview
          11.9.2.Financial Highlights
          11.9.3.Product Portfolio
          11.9.4.SWOT Analysis
          11.9.5.Key Strategies and Developments
        11.10.Intel Corp
          11.10.1.Company Overview
          11.10.2.Financial Highlights
          11.10.3.Product Portfolio
          11.10.4.SWOT Analysis
          11.10.5.Key Strategies and Developments
        11.11.General Electric
          11.11.1.Company Overview
          11.11.2.Financial Highlights
          11.11.3.Product Portfolio
          11.11.4.SWOT Analysis
          11.11.5.Key Strategies and Developments
        11.12.Garmin
          11.12.1.Company Overview
          11.12.2.Financial Highlights
          11.12.3.Product Portfolio
          11.12.4.SWOT Analysis
          11.12.5.Key Strategies and Developments
        11.13.Microsoft
          11.13.1.Company Overview
          11.13.2.Financial Highlights
          11.13.3.Product Portfolio
          11.13.4.SWOT Analysis
          11.13.5.Key Strategies and Developments
        11.14.Other Key Players
          11.14.1.Company Overview
          11.14.2.Financial Highlights
          11.14.3.Product Portfolio
          11.14.4.SWOT Analysis
          11.14.5.Key Strategies and Developments
      12.Assumptions and Acronyms
      13.Research Methodology
      14.Contact
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