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AIビジョンチップ市場レポート:動向、予測、競合分析 (2031年まで)

AI Vision Chip Market Report: Trends, Forecast and Competitive Analysis to 2031


出版日
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Lucintel
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英文 150 Pages
納期
3営業日
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AIビジョンチップ市場レポート:動向、予測、競合分析 (2031年まで)
出版日: 2025年03月13日
発行: Lucintel
ページ情報: 英文 150 Pages
納期: 3営業日
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  • 概要
  • 目次
概要

世界のAIビジョンチップ市場の将来は、セキュリティ・監視、自動車、家電、IoT、ドローン、ロボット市場に機会があり、有望視されています。世界のAIビジョンチップ市場は、2025年から2031年にかけてCAGR 32.4%で成長すると予測されています。この市場の主な促進要因は、エッジコンピューティングの採用が拡大していることと、製造、医療、セキュリティ、自律走行車などのさまざまな産業でコンピュータビジョン技術の採用が増加していることです。

  • Lucintelの予測によると、種類別では12nmが予測期間中に最も高い成長を遂げる見込みです。
  • 用途別では、セキュリティ・監視が最も高い成長が見込まれています。
  • 地域別では、アジア太平洋が予測期間中に最も高い成長が見込まれます。

AIビジョンチップ市場の戦略的成長機会

AIビジョンチップ市場は、技術進歩や市場の需要に後押しされ、様々なアプリケーションにおいていくつかの戦略的成長機会を提示しています。

  • スマートセキュリティシステム:スマートセキュリティシステムの成長は、AIビジョンチップに大きな機会を提供します。これらのチップは、顔認識、動体検知、異常検知などの機能により、監視カメラやセキュリティソリューションを強化します。住宅、商業、公共部門における高度なセキュリティソリューションの需要が、この応用分野の成長を促進しています。
  • 自律走行車:自律走行車は、AIビジョンチップの主要な成長分野です。これらのチップは、ナビゲーション、障害物検知、運転支援システムで使用される視覚データの処理に不可欠だからです。現在進行中の自動運転技術の開発と自動車の安全機能の進歩が、自動車産業におけるAIビジョンチップの機会を生み出しています。
  • 産業オートメーション:AIビジョンチップは、品質管理、予知保全、ロボット工学などの用途で、産業オートメーションでの使用が増加しています。これらのチップは、製造プロセスの精度と効率を向上させ、スマート工場や自動生産ラインの成長を促進しています。インダストリー4.0と自動化への注目がこの市場セグメントを拡大しています。
  • 医療と医療画像:医療分野では、医療用画像処理と診断にAIビジョンチップの機会があります。これらのチップは、画質の向上、リアルタイム分析、パターン認識などの機能で画像処理システムを強化します。高度な診断ツールや遠隔医療に対する需要の高まりが、この応用分野での採用を促進しています。
  • 拡張現実(AR)と仮想現実(VR):AIビジョンチップはARとVRアプリケーションに不可欠であり、没入体験とリアルタイムのインタラクションに必要な処理能力を提供します。新興国のAR・VR技術市場の発展は、ゲーム、トレーニング、エンターテイメントなどのアプリケーションをサポートするAIビジョンチップの機会を生み出し、ユーザー体験を向上させ、市場の可能性を拡大しています。

このような戦略的成長機会は、AIビジョンチップの多様な応用と可能性を浮き彫りにしています。スマートセキュリティシステム、自律走行車、産業オートメーション、医療、AR/VRに注力することで、企業は拡大する市場に参入し、新たなニーズに対応することができ、AIビジョンチップ分野のイノベーションと成長を促進します。

AIビジョンチップ市場の促進要因・課題

AIビジョンチップ市場は、技術進歩、経済要因、規制上の考慮事項など、様々な促進要因・課題によって形成されています。

AIビジョンチップ市場の促進要因には、以下のようなものがあります:

  • 技術進歩:AIとビジョン技術の急速な進歩がAIビジョンチップ市場を牽引しています。チップ設計、処理能力、AIアルゴリズムにおける革新がビジョンシステムの機能を強化し、より高度で効率的なアプリケーションを可能にしています。このような進歩は、複数の産業におけるAIビジョンチップの成長を支えています。
  • 自動化需要の増加:製造、自動車、セキュリティなどの分野における自動化需要の高まりが、AIビジョンチップの採用を促進しています。これらのチップは高度な視覚認識と処理を可能にし、自動化の取り組みをサポートし、効率を向上させます。スマート工場、自律走行車、インテリジェントセキュリティシステムへの注目が市場成長を後押ししています。
  • 民生用電子機器の拡大:スマートフォンやスマートホームデバイスなどの民生用電子機器へのAIビジョンチップの統合が市場拡大の原動力となっています。消費者向け製品における画像処理機能の強化やインテリジェント機能の需要が、AIビジョンチップ・メーカーに機会をもたらしています。この動向は、日常機器における高度なビジョン技術の重要性の高まりを反映しています。
  • スマートシティとインフラの成長:スマートシティとインフラの開発は、監視、交通管理、公共安全などのアプリケーションにAIビジョンチップの需要を生み出しています。インテリジェントでコネクテッドな都市環境の構築に注力することで、こうした取り組みをサポートするビジョンチップの採用が促進され、市場の成長に寄与しています。
  • エッジコンピューティングの進展:エッジコンピューティングの台頭は、ローカル処理機能を備えたAIビジョンチップの需要を促進しています。エッジAIチップは、リアルタイムのデータ分析と応答を可能にし、自律走行車、産業オートメーション、スマートデバイスのアプリケーションをサポートします。この動向は、効率的で低遅延なコンピューティング・ソリューションに対するニーズの高まりを反映しています。

AIビジョンチップ市場の課題は以下の通りです:

  • 高い開発コスト:AIビジョンチップの開発と生産には、研究、設計、製造に関連する高いコストがかかります。これらの費用は、新規参入企業にとっては参入障壁となり、エンドユーザーにとってはチップの値ごろ感に影響します。競争力のある価格設定を維持しながら開発コストを管理することは、業界にとって重要な課題です。
  • 統合と互換性の問題:AIビジョンチップを多様なアプリケーションやシステムに展開する場合、統合と互換性の問題が生じる可能性があります。チップをさまざまなハードウェアやソフトウェアプラットフォームとシームレスに動作させることは、実装を成功させるために不可欠です。これらの課題に対処するには、相互運用性を実現するための入念な設計とテストが必要です。
  • データプライバシーとセキュリティの懸念:AIビジョンチップは監視や医療など機密性の高いアプリケーションに使用されるため、データプライバシーとセキュリティへの懸念は重要な課題です。データを保護し、ユーザーの信頼を維持するためには、強固なセキュリティ対策と規制へのコンプライアンスを確保することが極めて重要です。ビジョン技術の普及には、こうした懸念への対応が不可欠です。

AIビジョンチップ市場は、技術の進歩、自動化需要、家電製品の成長、スマートシティ開発、エッジコンピューティングの影響を受けています。しかし、高い開発コスト、統合の問題、データセキュリティの懸念が課題となっています。AIビジョンチップ市場の継続的な成長と革新のためには、これらの市場促進要因・課題のバランスをとることが重要です。

目次

第1章 エグゼクティブサマリー

第2章 世界のAIビジョンチップ市場:市場力学

  • イントロダクション、背景、分類
  • サプライチェーン
  • 業界の促進要因と課題

第3章 市場動向と予測分析 (2019年~2031年)

  • マクロ経済動向 (2019~2024年) と予測 (2025~2031年)
  • 世界のAIビジョンチップ市場の動向 (2019~2024年) と予測 (2025~2031年)
  • 世界のAIビジョンチップ市場:種類別
    • 12nm
    • 14nm
    • 22nm
    • その他
  • 世界のAIビジョンチップ市場:用途別
    • セキュリティ・監視
    • 自動車
    • 家電
    • IoT (モノのインターネット)
    • ドローン
    • ロボット
    • その他

第4章 地域別の市場動向と予測分析 (2019年~2031年)

  • 世界のAIビジョンチップ市場:地域別
  • 北米のAIビジョンチップ市場
  • 欧州のAIビジョンチップ市場
  • アジア太平洋のAIビジョンチップ市場
  • その他地域のAIビジョンチップ市場

第5章 競合分析

  • 製品ポートフォリオ分析
  • 運用統合
  • ポーターのファイブフォース分析

第6章 成長機会と戦略分析

  • 成長機会分析
    • 世界のAIビジョンチップ市場の成長機会:種類別
    • 世界のAIビジョンチップ市場の成長機会:用途別
    • 世界のAIビジョンチップ市場の成長機会:地域別
  • 世界のAIビジョンチップ市場の新たな動向
  • 戦略的分析
    • 新製品の開発
    • 世界のAIビジョンチップ市場の生産能力拡大
    • 世界のAIビジョンチップ市場における企業合併・買収 (M&A)、合弁事業
    • 認証とライセンシング

第7章 主要企業のプロファイル

  • Ambarella
  • Nextchip
  • Centeye
  • Ambarella
  • Axera
  • Goke Microelectronics
  • PixelCore
  • HiSilicon
  • IMICRO
  • NextVPU
目次

The future of the global AI vision chip market looks promising with opportunities in the security & surveillance, automotive, consumer electronic, internet of things, drone, and robot markets. The global AI vision chip market is expected to grow with a CAGR of 32.4% from 2025 to 2031. The major drivers for this market are the growing adoption of edge computing and the rising adoption of computer vision technology in various industries such as manufacturing, healthcare, security, and autonomous vehicles.

  • Lucintel forecasts that, within the type category, 12 nm is expected to witness the highest growth over the forecast period.
  • Within the application category, security & surveillance is expected to witness the highest growth.
  • In terms of regions, APAC is expected to witness the highest growth over the forecast period.

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Emerging Trends in the AI Vision Chip Market

The AI vision chip market is evolving with several key trends that are driving innovation and adoption across various applications.

  • Edge AI Integration: Edge AI integration is a significant trend, enabling AI vision chips to process data locally rather than relying on cloud computing. This reduces latency, enhances real-time processing, and improves privacy by minimizing data transmission. Edge AI chips are crucial for applications such as autonomous vehicles, smart cameras, and industrial automation, where immediate data analysis and response are essential.
  • Enhanced Energy Efficiency: There is a growing emphasis on energy-efficient AI vision chips to address the increasing demand for power in high-performance computing. Advances in chip design and manufacturing technologies are leading to the development of chips that consume less power while delivering high performance. This trend supports the deployment of AI vision chips in battery-powered devices and applications where energy conservation is critical.
  • Increased Focus on Security and Privacy: As AI vision chips are used in sensitive applications like surveillance and personal devices, there is an increased focus on enhancing security and privacy features. Innovations include incorporating advanced encryption and secure data processing capabilities directly into the chips. This trend aims to address concerns about data breaches and unauthorized access, ensuring the secure and reliable operation of vision systems.
  • Integration with 5G Networks: The integration of AI vision chips with 5G networks is enhancing the capabilities of remote and real-time applications. 5G's high-speed connectivity and low latency complement the processing power of AI vision chips, enabling advanced use cases such as real-time remote monitoring, smart city infrastructure, and augmented reality applications. This trend supports the growth of connected devices and applications requiring high-speed data transfer.
  • Growth of AI-Powered Robotics: AI-powered robotics is a key growth area for AI vision chips, as these chips enhance the visual perception and decision-making capabilities of robots. Developments include improved object recognition, depth perception, and navigation capabilities. This trend supports advancements in various robotics applications, including manufacturing, healthcare, and service robots, driving innovation in automation and intelligent systems.

These emerging trends are reshaping the AI vision chip market by enhancing performance, efficiency, and application capabilities. Edge AI integration, energy efficiency, security and privacy, 5G connectivity, and AI-powered robotics are driving innovation and adoption, leading to more advanced and versatile vision systems.

Recent Developments in the AI Vision Chip Market

Recent developments in the AI vision chip market reflect advancements in technology and increasing demand for sophisticated imaging solutions.

  • Introduction of High-Performance Edge AI Chips: New high-performance edge AI chips are being introduced, offering advanced processing capabilities for real-time image analysis. These chips are designed to perform complex tasks locally, reducing latency and enhancing the functionality of applications such as autonomous vehicles and smart cameras. The focus is on improving processing power while maintaining low energy consumption.
  • Advancements in Low-Power AI Vision Chips: Developments in low-power AI vision chips are addressing the need for energy efficiency in battery-operated devices. Innovations include optimizing chip architectures and using advanced manufacturing processes to reduce power consumption without compromising performance. These chips are essential for wearable devices, IoT applications, and portable imaging systems.
  • Enhanced AI Algorithms for Vision Chips: The integration of advanced AI algorithms into vision chips is improving capabilities such as object detection, facial recognition, and scene understanding. These enhancements enable more accurate and sophisticated image processing, supporting applications in security, robotics, and augmented reality. AI-driven improvements are making vision chips more effective in diverse and complex environments.
  • Expansion of AI Vision Chips in Consumer Electronics: AI vision chips are increasingly being integrated into consumer electronics, such as smartphones and smart home devices. Developments include enhancing camera systems with advanced image processing capabilities and enabling new features such as real-time image enhancement and object recognition. This trend reflects the growing demand for intelligent and feature-rich consumer products.
  • Growth in AI Vision Chips for Automotive Applications: The automotive sector is experiencing growth in AI vision chips designed for advanced driver-assistance systems (ADAS) and autonomous vehicles. Innovations include chips that support features such as lane-keeping, collision avoidance, and adaptive cruise control. These developments are driving advancements in automotive safety and automation, reflecting the industry's focus on intelligent transportation solutions.

These key developments highlight the rapid advancements in the AI vision chip market. High-performance edge AI chips, low-power solutions, enhanced AI algorithms, expansion into consumer electronics, and growth in automotive applications are driving innovation and shaping the future of AI vision technologies.

Strategic Growth Opportunities for AI Vision Chip Market

The AI vision chip market presents several strategic growth opportunities across various applications, driven by technological advancements and market demands.

  • Smart Security Systems: The growth of smart security systems offers significant opportunities for AI vision chips. These chips enhance surveillance cameras and security solutions with capabilities such as facial recognition, motion detection, and anomaly detection. The demand for advanced security solutions in residential, commercial, and public sectors is driving growth in this application area.
  • Autonomous Vehicles: Autonomous vehicles are a major growth area for AI vision chips, as these chips are critical for processing visual data used in navigation, obstacle detection, and driver assistance systems. The ongoing development of self-driving technology and advancements in automotive safety features are creating opportunities for AI vision chips in the automotive industry.
  • Industrial Automation: AI vision chips are increasingly being used in industrial automation for applications such as quality control, predictive maintenance, and robotics. These chips improve the accuracy and efficiency of manufacturing processes, driving growth in smart factories and automated production lines. The focus on Industry 4.0 and automation is expanding this market segment.
  • Healthcare and Medical Imaging: The healthcare sector presents opportunities for AI vision chips in medical imaging and diagnostics. These chips enhance imaging systems with capabilities such as improved image quality, real-time analysis, and pattern recognition. The growing demand for advanced diagnostic tools and telemedicine is driving adoption in this application area.
  • Augmented Reality (AR) and Virtual Reality (VR): AI vision chips are crucial for AR and VR applications, providing the processing power needed for immersive experiences and real-time interactions. Developments in AR and VR technologies are creating opportunities for AI vision chips to support applications in gaming, training, and entertainment, enhancing user experiences and expanding market potential.

These strategic growth opportunities highlight the diverse applications and potential of AI vision chips. By focusing on smart security systems, autonomous vehicles, industrial automation, healthcare, and AR/VR, companies can tap into expanding markets and address emerging needs, driving innovation and growth in the AI vision chip sector.

AI Vision Chip Market Driver and Challenges

The AI vision chip market is shaped by various drivers and challenges, including technological advancements, economic factors, and regulatory considerations.

The factors responsible for driving the AI vision chip market include:

  • Technological Advancements: Rapid advancements in AI and vision technologies are driving the AI vision chip market. Innovations in chip design, processing power, and AI algorithms are enhancing the capabilities of vision systems, enabling more sophisticated and efficient applications. These advancements support the growth of AI vision chips across multiple industries.
  • Increasing Demand for Automation: The growing demand for automation in sectors such as manufacturing, automotive, and security is driving the adoption of AI vision chips. These chips enable advanced visual recognition and processing, supporting automation efforts and improving efficiency. The focus on smart factories, autonomous vehicles, and intelligent security systems fuels market growth.
  • Expansion of Consumer Electronics: The integration of AI vision chips into consumer electronics, such as smartphones and smart home devices, is driving market expansion. The demand for enhanced imaging capabilities and intelligent features in consumer products is creating opportunities for AI vision chip manufacturers. This trend reflects the increasing importance of advanced vision technologies in everyday devices.
  • Growth in Smart Cities and Infrastructure: The development of smart cities and infrastructure is creating demand for AI vision chips in applications such as surveillance, traffic management, and public safety. The focus on building intelligent and connected urban environments is driving the adoption of vision chips that support these initiatives, contributing to market growth.
  • Advances in Edge Computing: The rise of edge computing is driving demand for AI vision chips with local processing capabilities. Edge AI chips enable real-time data analysis and response, supporting applications in autonomous vehicles, industrial automation, and smart devices. This trend reflects the growing need for efficient and low-latency computing solutions.

Challenges in the AI vision chip market include:

  • High Development Costs: The development and production of AI vision chips involve high costs related to research, design, and manufacturing. These expenses can be a barrier to entry for new players and impact the affordability of chips for end users. Managing development costs while maintaining competitive pricing is a key challenge for the industry.
  • Integration and Compatibility Issues: Integration and compatibility issues can arise when deploying AI vision chips in diverse applications and systems. Ensuring that chips work seamlessly with different hardware and software platforms is essential for successful implementation. Addressing these challenges requires careful design and testing to achieve interoperability.
  • Data Privacy and Security Concerns: As AI vision chips are used in sensitive applications such as surveillance and healthcare, data privacy and security concerns are significant challenges. Ensuring robust security measures and compliance with regulations is crucial to protect data and maintain user trust. Addressing these concerns is essential for the widespread adoption of vision technologies.

The AI vision chip market is influenced by technological advancements, automation demand, consumer electronics growth, smart city development, and edge computing. However, high development costs, integration issues, and data security concerns present challenges. Balancing these drivers and challenges is crucial for the continued growth and innovation in the AI vision chip market.

List of AI Vision Chip Companies

Companies in the market compete on the basis of product quality offered. Major players in this market focus on expanding their manufacturing facilities, R&D investments, infrastructural development, and leverage integration opportunities across the value chain. Through these strategies AI vision chip companies cater increasing demand, ensure competitive effectiveness, develop innovative products & technologies, reduce production costs, and expand their customer base. Some of the AI vision chip companies profiled in this report include-

  • Ambarella
  • Nextchip
  • Centeye
  • Ambarella
  • Axera
  • Goke Microelectronics
  • PixelCore
  • HiSilicon
  • IMICRO
  • NextVPU

AI Vision Chip by Segment

The study includes a forecast for the global AI vision chip market by type, application, and region.

AI Vision Chip Market by Type [Analysis by Value from 2019 to 2031]:

  • 12 nm
  • 14 nm
  • 22 nm
  • Others

AI Vision Chip Market by Application [Analysis by Value from 2019 to 2031]:

  • Security & Surveillance
  • Automotive
  • Consumer Electronics
  • Internet of Things
  • Drone
  • Robot
  • Others

AI Vision Chip Market by Region [Analysis by Value from 2019 to 2031]:

  • North America
  • Europe
  • Asia Pacific
  • The Rest of the World

Country Wise Outlook for the AI Vision Chip Market

The AI vision chip market has experienced significant advancements due to increasing demand for enhanced visual recognition and processing capabilities across various sectors. AI vision chips, which integrate artificial intelligence with imaging technologies, are driving innovations in automation, surveillance, automotive, and consumer electronics. Each country is making strides in this technology, reflecting local priorities and technological expertise.

  • United States: In the U.S., recent developments in AI vision chips include advancements in edge computing and integration with AI platforms for real-time image processing. Companies like Intel and NVIDIA are leading innovations with chips designed for high-performance computer vision tasks, supporting applications in autonomous vehicles, security systems, and augmented reality (AR). The focus is also on enhancing chip efficiency and processing power to meet growing demands in data-intensive applications.
  • China: China is rapidly advancing in the AI vision chip market with significant investments in AI research and development. Chinese tech giants such as Huawei and Alibaba are developing vision chips that enhance capabilities in facial recognition, smart surveillance, and industrial automation. The government's push for technological self-sufficiency and advancements in semiconductor manufacturing is accelerating the deployment of AI vision chips across various sectors, including smart cities and e-commerce.
  • Germany: Germany is focusing on integrating AI vision chips with industrial automation and smart manufacturing. Companies like Bosch and Infineon are developing chips that enhance machine vision systems, enabling precision in manufacturing processes and predictive maintenance. The emphasis is on improving energy efficiency and processing speed to support Germany's strong industrial base and its Industry 4.0 initiatives, driving innovation in smart factories and automation systems.
  • India: In India, the AI vision chip market is growing with applications in security, retail, and healthcare. Indian startups and tech companies are focusing on cost-effective solutions that leverage AI vision chips for surveillance systems, automated retail checkout, and medical imaging. The market is driven by increasing urbanization and the need for advanced technology in growing sectors, along with government initiatives to promote digital transformation and innovation.
  • Japan: Japan is advancing AI vision chips with applications in robotics, consumer electronics, and smart infrastructure. Companies such as Sony and Panasonic are developing chips that enhance image quality and processing capabilities for robotics and smart home devices. Japan's focus on integrating AI with IoT technologies is driving innovations in automation and smart city applications, reflecting the country's commitment to leading in technology and digital transformation.

Features of the Global AI Vision Chip Market

Market Size Estimates: AI vision chip market size estimation in terms of value ($B).

Trend and Forecast Analysis: Market trends (2019 to 2024) and forecast (2025 to 2031) by various segments and regions.

Segmentation Analysis: AI vision chip market size by type, application, and region in terms of value ($B).

Regional Analysis: AI vision chip market breakdown by North America, Europe, Asia Pacific, and Rest of the World.

Growth Opportunities: Analysis of growth opportunities in different types, applications, and regions for the AI vision chip market.

Strategic Analysis: This includes M&A, new product development, and competitive landscape of the AI vision chip market.

Analysis of competitive intensity of the industry based on Porter's Five Forces model.

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This report answers following 11 key questions:

  • Q.1. What are some of the most promising, high-growth opportunities for the AI vision chip market by type (12 nm, 14 nm, 22 nm, and others), application (security & surveillance, automotive, consumer electronics, internet of things, drone, robot, and others), and region (North America, Europe, Asia Pacific, and the Rest of the World)?
  • Q.2. Which segments will grow at a faster pace and why?
  • Q.3. Which region will grow at a faster pace and why?
  • Q.4. What are the key factors affecting market dynamics? What are the key challenges and business risks in this market?
  • Q.5. What are the business risks and competitive threats in this market?
  • Q.6. What are the emerging trends in this market and the reasons behind them?
  • Q.7. What are some of the changing demands of customers in the market?
  • Q.8. What are the new developments in the market? Which companies are leading these developments?
  • Q.9. Who are the major players in this market? What strategic initiatives are key players pursuing for business growth?
  • Q.10. What are some of the competing products in this market and how big of a threat do they pose for loss of market share by material or product substitution?
  • Q.11. What M&A activity has occurred in the last 5 years and what has its impact been on the industry?

Table of Contents

1. Executive Summary

2. Global AI Vision Chip Market : Market Dynamics

  • 2.1: Introduction, Background, and Classifications
  • 2.2: Supply Chain
  • 2.3: Industry Drivers and Challenges

3. Market Trends and Forecast Analysis from 2019 to 2031

  • 3.1. Macroeconomic Trends (2019-2024) and Forecast (2025-2031)
  • 3.2. Global AI Vision Chip Market Trends (2019-2024) and Forecast (2025-2031)
  • 3.3: Global AI Vision Chip Market by Type
    • 3.3.1: 12 nm
    • 3.3.2: 14 nm
    • 3.3.3: 22 nm
    • 3.3.4: Others
  • 3.4: Global AI Vision Chip Market by Application
    • 3.4.1: Security & Surveillance
    • 3.4.2: Automotive
    • 3.4.3: Consumer Electronics
    • 3.4.4: Internet of Things
    • 3.4.5: Drone
    • 3.4.6: Robot
    • 3.4.7: Others

4. Market Trends and Forecast Analysis by Region from 2019 to 2031

  • 4.1: Global AI Vision Chip Market by Region
  • 4.2: North American AI Vision Chip Market
    • 4.2.1: North American Market by Type: 12 nm, 14 nm, 22 nm, and Others
    • 4.2.2: North American Market by Application: Security & Surveillance, Automotive, Consumer Electronics, Internet of Things, Drone, Robot, and Others
  • 4.3: European AI Vision Chip Market
    • 4.3.1: European Market by Type: 12 nm, 14 nm, 22 nm, and Others
    • 4.3.2: European Market by Application: Security & Surveillance, Automotive, Consumer Electronics, Internet of Things, Drone, Robot, and Others
  • 4.4: APAC AI Vision Chip Market
    • 4.4.1: APAC Market by Type: 12 nm, 14 nm, 22 nm, and Others
    • 4.4.2: APAC Market by Application: Security & Surveillance, Automotive, Consumer Electronics, Internet of Things, Drone, Robot, and Others
  • 4.5: ROW AI Vision Chip Market
    • 4.5.1: ROW Market by Type: 12 nm, 14 nm, 22 nm, and Others
    • 4.5.2: ROW Market by Application: Security & Surveillance, Automotive, Consumer Electronics, Internet of Things, Drone, Robot, and Others

5. Competitor Analysis

  • 5.1: Product Portfolio Analysis
  • 5.2: Operational Integration
  • 5.3: Porter's Five Forces Analysis

6. Growth Opportunities and Strategic Analysis

  • 6.1: Growth Opportunity Analysis
    • 6.1.1: Growth Opportunities for the Global AI Vision Chip Market by Type
    • 6.1.2: Growth Opportunities for the Global AI Vision Chip Market by Application
    • 6.1.3: Growth Opportunities for the Global AI Vision Chip Market by Region
  • 6.2: Emerging Trends in the Global AI Vision Chip Market
  • 6.3: Strategic Analysis
    • 6.3.1: New Product Development
    • 6.3.2: Capacity Expansion of the Global AI Vision Chip Market
    • 6.3.3: Mergers, Acquisitions, and Joint Ventures in the Global AI Vision Chip Market
    • 6.3.4: Certification and Licensing

7. Company Profiles of Leading Players

  • 7.1: Ambarella
  • 7.2: Nextchip
  • 7.3: Centeye
  • 7.4: Ambarella
  • 7.5: Axera
  • 7.6: Goke Microelectronics
  • 7.7: PixelCore
  • 7.8: HiSilicon
  • 7.9: IMICRO
  • 7.10: NextVPU