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PUBLISHER: Orion Market Research | PRODUCT CODE: 1877674

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PUBLISHER: Orion Market Research | PRODUCT CODE: 1877674

Global Neuromorphic Computing Market 2025-2035

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Neuromorphic Computing Market Size, Share & Trends Analysis Report by Offering (Hardware, and Software) By Deployment (Edge Computing, and Cloud Computing) By Application( Data Mining, Object Detection, Image & Signal Processing, and Others) and By Vertical (Aerospace and Military & Defense, Automotive, Consumer Electronics, Healthcare, IT & Telecom, Industrials, and Others) Forecast Period (2025-2035)

Industry Overview

Neuromorphic computing market was valued at $26.4 million in 2024 and is projected to reach $1,058.3 million by 2030 and $8,035.0 million by 2035, growing at a CAGR of 66.5% during the forecast period (2025-2035). The market is experiencing substantial growth, driven by the increasing demand for energy-efficient artificial intelligence (AI) and machine learning (ML) applications. Key growth factors include technology's integration into autonomous vehicles, robotics, and edge computing devices, as well as advancements in deep learning and hardware development. Challenges such as a lack of standardization and high complexity could temper growth.

Market Dynamics

Explosion of Edge AI Demand and Energy Constraints

Modern AI workloads increasingly need local, always-on inference (smart cameras, wearables, industrial sensors) where power and latency are critical. Neuromorphic architecture, which emulates neuronal spikes and sparse event processing, offers orders-of-magnitude improvements in energy per inference compared with conventional accelerators for certain workloads. That energy/latency advantage is moving neuromorphic designs from lab demonstrations toward pilot deployments in sensing, surveillance, and low-power robotics, creating steady demand for neuromorphic processors and associated toolchains.

Hardware & Algorithmic Maturation (Device Innovations and SNN Software)

Progress in silicon (mixed-signal neurosynaptic chips), memristive synapse candidates, and improved spiking-neural-network (SNN) training tool chains is reducing the gap between research prototypes and commercial products. Investments in IP (analog/digital neuron circuits, synapse arrays) and growing open-source software stacks make integration into electronics and automotive supply chains easier, accelerating vendor roadmaps and broadening the set of viable applications.

Ecosystem Funding, Partnerships, and Commercialization Push

Government research funding, corporate R&D budgets (semiconductor incumbents), and strategic partnerships between chipmakers, system integrators, and end-users are fast-tracking commercialization. Examples include industry alliances, defense/space research programs, and large vendors incorporating neuromorphic IP into product roadmaps. This confluence of funding, pilot projects, and early commercial wins is lowering business risk for adopters and attracting further capital to startups and fabs, reinforcing the strong CAGR projections across most analyst houses.

Market Segmentation

  • Based on the offering, the market is segmented into hardware and software.
  • Based on deployment, the market is segmented into edge computing and cloud computing.
  • Based on the application, the market is segmented into data mining, object detection, image & signal processing, and others.
  • Based on the vertical, the market is segmented into aerospace and military & defense, automotive, consumer electronics, healthcare, it & telecom, industrials, and others.

Hardware Led to the Largest Market Share

The hardware/neuromorphic processors segment is the largest single revenue driver and is expected to lead the global neuromorphic computing market with the largest share. Multiple industry reports identify neuromorphic processors, chips, and supporting neurosynaptic hardware as the primary revenue source because the market today is hardware-led, customers buy devices (chips, boards, edge modules) before broader software and services ecosystems scale, and incumbents/IDMs are investing heavily to commercialize neuromorphic silicon.

Edge Computing: A Key Segment in Market Growth

Edge deployment (Edge Computing) is the key growth segment driving the neuromorphic computing market over the next decade. Neuromorphic architectures, especially spiking-neural-network chips and mixed-signal neuron/synapse arrays, are uniquely suited to always-on, low-latency, ultra-low-power inference at the edge (smart cameras, wearables, industrial sensors, drones, autonomous robots). That technical fit creates immediate, high-value use cases where conventional GPUs/NPUs are either too power hungry or too latent; as a result, early commercial demand is concentrated on edge modules and on-device processors rather than centralized cloud deployments.

In parallel, the ongoing maturation of SNN training toolchains, the availability of neuromorphic development kits, and partnerships between chipmakers and systems integrators are accelerating pilot-to-production moves in edge sensing, object detection, and real-time signal processing. Market structure reinforces this: most revenue today is captured by hardware sales (chips/boards) used in edge appliances, producing recurring design-win dynamics and stronger short-term TAM growth for edge offerings. Geographically, North America leads adoption and R&D, while Asia-Pacific (China, India) is emerging as the fastest-growing edge demand pool because of massive IoT rollouts and smart-device manufacturing.

Regional Outlook

The global neuromorphic computing market is further divided by region, including North America (the US and Canada), Europe (the UK, Germany, France, Italy, Spain, Russia, and the Rest of Europe), Asia-Pacific (India, China, Japan, South Korea, Australia and New Zealand, ASEAN Countries, and the Rest of Asia-Pacific), and the Rest of the World (the Middle East & Africa, and Latin America).

North America Maintains Strong Market Position

In North America, the US dominates the global neuromorphic computing market with a major share, primarily due to its strong presence of leading technology companies, extensive R&D investments, and early adoption of advanced computing architectures. The country is home to major neuromorphic hardware and AI innovators such as Intel Corporation, IBM, Hewlett Packard Enterprise, Qualcomm Technologies, and HRL Laboratories, all of which are actively developing neuromorphic chips and architectures capable of mimicking human brain functions. The US government and defense agencies, including DARPA, have been significant contributors to neuromorphic research, funding projects focused on energy-efficient AI and brain-inspired computing for military, aerospace, and security applications.

Furthermore, the presence of top-tier universities and research institutions such as Stanford University, MIT, and Caltech has strengthened academic-industry collaborations, accelerating the development of new algorithms and hardware architectures. The country's robust semiconductor ecosystem, supported by large-scale investments through initiatives like the CHIPS and Science Act, has also enhanced domestic production and commercialization capabilities for neuromorphic processors. In addition, US-based companies are pioneering edge-based neuromorphic applications in autonomous vehicles, smart IoT systems, and advanced robotics, creating early commercialization opportunities.

Market Players Outlook

The major companies operating in the global neuromorphic computing market include BrainChip, Intel, IBM, Qualcomm, and Samsung, among others. Market players are leveraging partnerships, collaborations, mergers, and acquisition strategies for business expansion and innovative product development to maintain their market positioning.

Recent Developments

  • In June 2025, Innatera launched its first commercially available neuromorphic microcontroller, Pulsar, designed to bring brain-inspired intelligence to battery-powered devices for real-time, ultra-low power AI at the edge. Neuromorphic processors mimic the structure and function of biological neural networks, integrating memory and computation in the same physical locations. Pulsar processes data locally at the sensor level, delivering up to 100 times lower latency and 500 times lower energy consumption than conventional AI processors. It combines neuromorphic computing with traditional signal processing.

The Report Covers:

  • Market value data analysis of 2024 and forecast to 2035.
  • Annualized market revenues ($ million) for each market segment.
  • Country-wise analysis of major geographical regions.
  • Key companies operating in the global neuromorphic computing market. Based on the availability of data, information related to new products and relevant news is also available in the report.
  • Analysis of business strategies by identifying the key market segments positioned for strong growth in the future.
  • Analysis of market-entry and market expansion strategies.
  • Competitive strategies by identifying 'who-stands-where' in the market.
Product Code: OMR2024028

Table of Contents

1. Report Summary

  • Current Industry Analysis and Growth Potential Outlook
  • Global Neuromorphic Computing Market Sales Analysis - Offering | Deployment | Application | Vertical ($ Million)
  • Neuromorphic Computing Market Sales Performance of Top Countries
  • 1.1. Research Methodology
  • Primary Research Approach
  • Secondary Research Approach
  • 1.2. Market Snapshot

2. Market Overview and Insights

  • 2.1. Scope of the Study
  • 2.2. Analyst Insight & Current Market Trends
    • 2.2.1. Key Neuromorphic Computing Market Trends
    • 2.2.2. Market Recommendations
  • 2.3. Porter's Five Forces Analysis for the Neuromorphic Computing Market
    • 2.3.1. Competitive Rivalry
    • 2.3.2. Threat of New Entrants
    • 2.3.3. Bargaining Power of Suppliers
    • 2.3.4. Bargaining Power of Buyers
    • 2.3.5. Threat of Substitutes

3. Market Determinants

  • 3.1. Market Drivers
    • 3.1.1. Drivers For Global Neuromorphic Computing Market: Impact Analysis
  • 3.2. Market Pain Points and Challenges
    • 3.2.1. Restraints For Global Neuromorphic Computing Market: Impact Analysis
  • 3.3. Market Opportunities
    • 3.3.1. Opportunities For Global Neuromorphic Computing Market: Impact Analysis

4. Competitive Landscape

  • 4.1. Competitive Dashboard - Neuromorphic Computing Market Revenue and Share by Manufacturers
  • Neuromorphic Computing Product Comparison Analysis
  • Top Market Player Ranking Matrix
  • 4.2. Key Company Analysis
    • 4.2.1. BrainChip
      • 4.2.1.1. Overview
      • 4.2.1.2. Product Portfolio
      • 4.2.1.3. Financial Analysis
      • 4.2.1.4. SWOT Analysis
      • 4.2.1.5. Business Strategy
    • 4.2.2. Intel
      • 4.2.2.1. Overview
      • 4.2.2.2. Product Portfolio
      • 4.2.2.3. Financial Analysis
      • 4.2.2.4. SWOT Analysis
      • 4.2.2.5. Business Strategy
    • 4.2.3. IBM Corp.
      • 4.2.3.1. Overview
      • 4.2.3.2. Product Portfolio
      • 4.2.3.3. Financial Analysis
      • 4.2.3.4. SWOT Analysis
      • 4.2.3.5. Business Strategy
    • 4.2.4. Samsung
      • 4.2.4.1. Overview
      • 4.2.4.2. Product Portfolio
      • 4.2.4.3. Financial Analysis
      • 4.2.4.4. SWOT Analysis
      • 4.2.4.5. Business Strategy
    • 4.2.5. Qualcomm
      • 4.2.5.1. Overview
      • 4.2.5.2. Product Portfolio
      • 4.2.5.3. Financial Analysis
      • 4.2.5.4. SWOT Analysis
      • 4.2.5.5. Business Strategy
  • 4.3. Top Winning Strategies by Market Players
    • 4.3.1. Merger and Acquisition
    • 4.3.2. Product Launch
    • 4.3.3. Partnership And Collaboration

5. Global Neuromorphic Computing Market Sales Analysis by Offering ($ Million)

  • 5.1. Hardware
  • 5.2. Software

6. Global Neuromorphic Computing Market Sales Analysis by Deployment ($ Million)

  • 6.1. Edge Computing
  • 6.2. Cloud Computing

7. Global Neuromorphic Computing Market Sales Analysis by Application ($ Million)

  • 7.1. Data Mining
  • 7.2. Object Detection
  • 7.3. Image & Signal Processing
  • 7.4. Others

8. Global Neuromorphic Computing Market Sales Analysis by Vertical ($ Million)

  • 8.1. Aerospace and Military & Defense
  • 8.2. Automotive
  • 8.3. Consumer Electronics
  • 8.4. Healthcare
  • 8.5. IT & Telecom
  • 8.6. Industrials
  • 8.7. Others

9. Regional Analysis

  • 9.1. North American Neuromorphic Computing Market Sales Analysis - Offering | Deployment | Application | Vertical ($ Million)
  • Macroeconomic Factors for North America
    • 9.1.1. United States
    • 9.1.2. Canada
  • 9.2. European Neuromorphic Computing Market Sales Analysis - Offering | Deployment | Application | Vertical ($ Million)
  • Macroeconomic Factors for Europe
    • 9.2.1. UK
    • 9.2.2. Germany
    • 9.2.3. Italy
    • 9.2.4. Spain
    • 9.2.5. France
    • 9.2.6. Russia
    • 9.2.7. Rest of Europe
  • 9.3. Asia-Pacific Neuromorphic Computing Market Sales Analysis - Offering | Deployment | Application | Vertical ($ Million)
  • Macroeconomic Factors for Asia-Pacific
    • 9.3.1. China
    • 9.3.2. Japan
    • 9.3.3. South Korea
    • 9.3.4. India
    • 9.3.5. Australia & New Zealand
    • 9.3.6. ASEAN Countries (Thailand, Indonesia, Vietnam, Singapore, And Other)
    • 9.3.7. Rest of Asia-Pacific
  • 9.4. Rest of the World Neuromorphic Computing Market Sales Analysis - Offering | Deployment | Application | Vertical ($ Million)
  • Macroeconomic Factors for the Rest of the World
    • 9.4.1. Latin America
    • 9.4.2. Middle East and Africa

10. Company Profiles

  • 10.1. AiMatter / aiCTX spinouts
    • 10.1.1. Quick Facts
    • 10.1.2. Company Overview
    • 10.1.3. Product Portfolio
    • 10.1.4. Business Strategies
  • 10.2. Aspinity
    • 10.2.1. Quick Facts
    • 10.2.2. Company Overview
    • 10.2.3. Product Portfolio
    • 10.2.4. Business Strategies
  • 10.3. BrainChip Holdings Ltd.
    • 10.3.1. Quick Facts
    • 10.3.2. Company Overview
    • 10.3.3. Product Portfolio
    • 10.3.4. Business Strategies
  • 10.4. BrainChip partners/ecosystem firms
    • 10.4.1. Quick Facts
    • 10.4.2. Company Overview
    • 10.4.3. Product Portfolio
    • 10.4.4. Business Strategies
  • 10.5. General Vision (GVI)
    • 10.5.1. Quick Facts
    • 10.5.2. Company Overview
    • 10.5.3. Product Portfolio
    • 10.5.4. Business Strategies
  • 10.6. GrAI Matter Labs
    • 10.6.1. Quick Facts
    • 10.6.2. Company Overview
    • 10.6.3. Product Portfolio
    • 10.6.4. Business Strategies
  • 10.7. Huawei / Chinese research labs
    • 10.7.1. Quick Facts
    • 10.7.2. Company Overview
    • 10.7.3. Product Portfolio
    • 10.7.4. Business Strategies
  • 10.8. IBM Corp.
    • 10.8.1. Quick Facts
    • 10.8.2. Company Overview
    • 10.8.3. Product Portfolio
    • 10.8.4. Business Strategies
  • 10.9. Innatera Nanosystems
    • 10.9.1. Quick Facts
    • 10.9.2. Company Overview
    • 10.9.3. Product Portfolio
    • 10.9.4. Business Strategies
  • 10.10. Intel Corp.
    • 10.10.1. Quick Facts
    • 10.10.2. Company Overview
    • 10.10.3. Product Portfolio
    • 10.10.4. Business Strategies
  • 10.11. Knowm
    • 10.11.1. Quick Facts
    • 10.11.2. Company Overview
    • 10.11.3. Product Portfolio
    • 10.11.4. Business Strategies
  • 10.12. Prophesee
    • 10.12.1. Quick Facts
    • 10.12.2. Company Overview
    • 10.12.3. Product Portfolio
    • 10.12.4. Business Strategies
  • 10.13. Qualcomm
    • 10.13.1. Quick Facts
    • 10.13.2. Company Overview
    • 10.13.3. Product Portfolio
    • 10.13.4. Business Strategies
  • 10.14. Samsung Electronics
    • 10.14.1. Quick Facts
    • 10.14.2. Company Overview
    • 10.14.3. Product Portfolio
    • 10.14.4. Business Strategies
  • 10.15. Sony
    • 10.15.1. Quick Facts
    • 10.15.2. Company Overview
    • 10.15.3. Product Portfolio
    • 10.15.4. Business Strategies
  • 10.16. SpiNNaker
    • 10.16.1. Quick Facts
    • 10.16.2. Company Overview
    • 10.16.3. Product Portfolio
    • 10.16.4. Business Strategies
  • 10.17. SynSense
    • 10.17.1. Quick Facts
    • 10.17.2. Company Overview
    • 10.17.3. Product Portfolio
    • 10.17.4. Business Strategies
  • 10.18. Syntiant
    • 10.18.1. Quick Facts
    • 10.18.2. Company Overview
    • 10.18.3. Product Portfolio
    • 10.18.4. Business Strategies
  • 10.19. Toshiba
    • 10.19.1. Quick Facts
    • 10.19.2. Company Overview
    • 10.19.3. Product Portfolio
    • 10.19.4. Business Strategies
  • 10.20. Various academic consortia & startups
    • 10.20.1. Quick Facts
    • 10.20.2. Company Overview
    • 10.20.3. Product Portfolio
    • 10.20.4. Business Strategies
Product Code: OMR2024028

LIST OF TABLES

  • 1. Global Neuromorphic Computing Market Research and Analysis by Offering, 2024-2035 ($ Million)
  • 2. Global Neuromorphic Computing Hardware Market Research and Analysis by Region, 2024-2035 ($ Million)
  • 3. Global Neuromorphic Computing Software Market Research and Analysis by Region, 2024-2035 ($ Million)
  • 4. Global Neuromorphic Computing Market Research and Analysis by Deployment, 2024-2035 ($ Million)
  • 5. Global Edge Computing Neuromorphic Computing Market Research and Analysis by Region, 2024-2035 ($ Million)
  • 6. Global Cloud Computing Neuromorphic Computing Market Research and Analysis by Region, 2024-2035 ($ Million)
  • 7. Global Neuromorphic Computing Market Research and Analysis by Application, 2024-2035 ($ Million)
  • 8. Global Data Mining Neuromorphic Computing Market Research and Analysis by Region, 2024-2035 ($ Million)
  • 9. Global Object Detection Neuromorphic Computing Market Research and Analysis by Region, 2024-2035 ($ Million)
  • 10. Global Image & Signal Processing Neuromorphic Computing Market Research and Analysis by Region, 2024-2035 ($ Million)
  • 11. Global Other Applications Neuromorphic Computing Market Research and Analysis by Region, 2024-2035 ($ Million)
  • 12. Global Neuromorphic Computing Market Research and Analysis by Vertical, 2024-2035 ($ Million)
  • 13. Global Aerospace & Military & Defense Neuromorphic Computing Market Research and Analysis by Region, 2024-2035 ($ Million)
  • 14. Global Automotive Neuromorphic Computing Market Research and Analysis by Region, 2024-2035 ($ Million)
  • 15. Global Consumer Electronics Neuromorphic Computing Market Research and Analysis by Region, 2024-2035 ($ Million)
  • 16. Global Healthcare Neuromorphic Computing Market Research and Analysis by Region, 2024-2035 ($ Million)
  • 17. Global IT & Telecom Neuromorphic Computing Market Research and Analysis by Region, 2024-2035 ($ Million)
  • 18. Global Industrial Neuromorphic Computing Market Research and Analysis by Region, 2024-2035 ($ Million)
  • 19. Global Other Verticals Neuromorphic Computing Market Research and Analysis by Region, 2024-2035 ($ Million)
  • 20. Global Neuromorphic Computing Market Research and Analysis by Region, 2024-2035 ($ Million)
  • 21. North American Neuromorphic Computing Market Research and Analysis by Country, 2024-2035 ($ Million)
  • 22. North American Neuromorphic Computing Market Research and Analysis by Offering, 2024-2035 ($ Million)
  • 23. North American Neuromorphic Computing Market Research and Analysis by Deployment, 2024-2035 ($ Million)
  • 24. North American Neuromorphic Computing Market Research and Analysis by Application, 2024-2035 ($ Million)
  • 25. North American Neuromorphic Computing Market Research and Analysis by Vertical, 2024-2035 ($ Million)
  • 26. European Neuromorphic Computing Market Research and Analysis by Country, 2024-2035 ($ Million)
  • 27. European Neuromorphic Computing Market Research and Analysis by Offering, 2024-2035 ($ Million)
  • 28. European Neuromorphic Computing Market Research and Analysis by Deployment, 2024-2035 ($ Million)
  • 29. European Neuromorphic Computing Market Research and Analysis by Application, 2024-2035 ($ Million)
  • 30. European Neuromorphic Computing Market Research and Analysis by Vertical, 2024-2035 ($ Million)
  • 31. Asia-Pacific Neuromorphic Computing Market Research and Analysis by Country, 2024-2035 ($ Million)
  • 32. Asia-Pacific Neuromorphic Computing Market Research and Analysis by Offering, 2024-2035 ($ Million)
  • 33. Asia-Pacific Neuromorphic Computing Market Research and Analysis by Deployment, 2024-2035 ($ Million)
  • 34. Asia-Pacific Neuromorphic Computing Market Research and Analysis by Application, 2024-2035 ($ Million)
  • 35. Asia-Pacific Neuromorphic Computing Market Research and Analysis by Vertical, 2024-2035 ($ Million)
  • 36. Rest of the World Neuromorphic Computing Market Research and Analysis by Region, 2024-2035 ($ Million)
  • 37. Rest of the World Neuromorphic Computing Market Research and Analysis by Offering, 2024-2035 ($ Million)
  • 38. Rest of the World Neuromorphic Computing Market Research and Analysis by Deployment, 2024-2035 ($ Million)
  • 39. Rest of the World Neuromorphic Computing Market Research and Analysis by Application, 2024-2035 ($ Million)
  • 40. Rest of the World Neuromorphic Computing Market Research and Analysis by Vertical, 2024-2035 ($ Million)

LIST OF FIGURES

  • 1. Global Neuromorphic Computing Market Share by Offering, 2024 vs 2035 (%)
  • 2. Global Neuromorphic Computing Hardware Market Share by Region, 2024 vs 2035 (%)
  • 3. Global Neuromorphic Computing Software Market Share by Region, 2024 vs 2035 (%)
  • 4. Global Neuromorphic Computing Market Share by Deployment, 2024 vs 2035 (%)
  • 5. Global Edge Computing Neuromorphic Computing Market Share by Region, 2024 vs 2035 (%)
  • 6. Global Cloud Computing Neuromorphic Computing Market Share by Region, 2024 vs 2035 (%)
  • 7. Global Neuromorphic Computing Market Share by Application, 2024 vs 2035 (%)
  • 8. Global Data Mining Neuromorphic Computing Market Share by Region, 2024 vs 2035 (%)
  • 9. Global Object Detection Neuromorphic Computing Market Share by Region, 2024 vs 2035 (%)
  • 10. Global Image & Signal Processing Neuromorphic Computing Market Share by Region, 2024 vs 2035 (%)
  • 11. Global Other Applications Neuromorphic Computing Market Share by Region, 2024 vs 2035 (%)
  • 12. Global Neuromorphic Computing Market Share by Vertical, 2024 vs 2035 (%)
  • 13. Global Aerospace & Military & Defense Neuromorphic Computing Market Share by Region, 2024 vs 2035 (%)

14. Global Automotive Neuromorphic Computing Market Share by Region, 2024 vs 2035 (%

  • 15. Global Consumer Electronics Neuromorphic Computing Market Share by Region, 2024 vs 2035 (%)
  • 16. Global Healthcare Neuromorphic Computing Market Share by Region, 2024 vs 2035 (%)
  • 17. Global IT & Telecom Neuromorphic Computing Market Share by Region, 2024 vs 2035 (%)
  • 18. Global Industrial Neuromorphic Computing Market Share by Region, 2024 vs 2035 (%)
  • 19. Global Other Verticals Neuromorphic Computing Market Share by Region, 2024 vs 2035 (%)
  • 20. Global Neuromorphic Computing Market Share by Region, 2024 Vs 2035 (%)
  • 21. US Neuromorphic Computing Market Size, 2024-2035 ($ Million)
  • 22. Canada Neuromorphic Computing Market Size, 2024-2035 ($ Million)
  • 23. UK Neuromorphic Computing Market Size, 2024-2035 ($ Million)
  • 24. France Neuromorphic Computing Market Size, 2024-2035 ($ Million)
  • 25. Germany Neuromorphic Computing Market Size, 2024-2035 ($ Million)
  • 26. Italy Neuromorphic Computing Market Size, 2024-2035 ($ Million)
  • 27. Spain Neuromorphic Computing Market Size, 2024-2035 ($ Million)
  • 28. Russia Neuromorphic Computing Market Size, 2024-2035 ($ Million)
  • 29. Rest of Europe Neuromorphic Computing Market Size, 2024-2035 ($ Million)
  • 30. India Neuromorphic Computing Market Size, 2024-2035 ($ Million)
  • 31. China Neuromorphic Computing Market Size, 2024-2035 ($ Million)
  • 32. Japan Neuromorphic Computing Market Size, 2024-2035 ($ Million)
  • 33. South Korea Neuromorphic Computing Market Size, 2024-2035 ($ Million)
  • 34. Australia and New Zealand Neuromorphic Computing Market Size, 2024-2035 ($ Million)
  • 35. ASEAN Economies Neuromorphic Computing Market Size, 2024-2035 ($ Million)
  • 36. Rest of Asia-Pacific Neuromorphic Computing Market Size, 2024-2035 ($ Million)
  • 37. Latin America Neuromorphic Computing Market Size, 2024-2035 ($ Million)
  • 38. Middle East and Africa Neuromorphic Computing Market Size, 2024-2035 ($ Million)
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