Field Programmable Gate Array (FPGA) Market Size by Product Type (High-end, Mid-range, and Low-end), By Technology (EEPROM, SRAM, Flash, and Antifuse), By Application (Military & Aerospace, Consumer Electronics, Telecom, Automotive, Data Processing, and Industrial) and Region Forecast to 2023-2032
Report Description
The global Field Programmable Gate Array (FPGA) market size is estimated at USD 8,308.3 million in 2022, expanding at a CAGR 9.1% from 2023-2032.
Market Definition
Field programmable gate array architecture (FPGA) is constructed around a matrix of configurable logic blocks (CLBs) connected via programmable interconnects, it is also known as a semiconductor device. Additionally, an integrated circuit is known as FPGA, which can be programmed later in the field after manufacturing. Identical to programmable read-only memory (PROM), a field programmable logic array has better potential. Furthermore, this chip can be programmed and re-programmed if upgrading is important is the greatest advantage of this chip.
Market Dynamics
The need for high data processing and rising network traffic across data centers is seeing rapid in the FPGA market. In a variety of data center hardware FPGA systems are used including server & disc cabinets and networking equipment. In addition, in optimizing storage and lowering network latency and processing applications, these systems help data center hardware. In the construction of new facilities, the rising investments by data center operators will witness growing demand. However, these arrays are slower than application-specific integrated circuits (ASIC) and expensive, which may hamper the market growth.
Moreover, in designing next-generation high-end applications the two dominant requirements are higher bandwidth and reduction in power consumption. The higher bandwidth in a similar footprint at the same or lower power and cost is the global trend across various markets. Furthermore, in various market segments, to ensure that new devices can assist the performance and power requirements of the targeted applications, several factors are required to be considered while building a new FPGA family. These factors include selecting the right process technology, enabling easier and power-efficient system-level design, designing the right architecture, and applying the right software power optimization. Thus, such factors offer lucrative opportunities for the field programmable gate array industry.
Segment Insights
The global field programmable gate array market is segmented on the basis of type, technology, application, and region.
The market is divided into three categories based on type: high-end, mid-range, and low-end. The low-end segment is likely to possess the market share. This is anticipated to their improved features such as embedded flash and high-level security, which are essentially used for system control and management applications in computing, industrial markets, and communication. Moreover, the segment is attributed to growing over the forecast period owing to the low-end FPGAs being adequate for enabling more complex board management designs
The market is divided into four categories based on technology: EEPROM, SRAM, flash, anti-fuse, and others. The SRAM (Static Random-Access Memory) segment is expected to hold the largest market share. The properties provided by the technology, such as better flexibility, re-programmability, and high integration is attributed to an increase in the demand for this segment. Additionally, towards the adoption of SRAM-based FPGAs, there are noticeable trends that further drive the ability to deliver high-speed operation. The SRAM cells' inherent speed allows for processing data at high frequencies, high-performance computing, and enabling real-time processing. Such benefited properties are expected to witness segment growth.
Competitive Insights
In the designer’s decision-making process power is an essential component. Additionally, in numerous system designs FPGAs are a popular choice. Additionally, a wise selection of FPGAs can significantly assist the designer in minimizing the challenges coupled with power consumption. Moreover, with the presence of several field programmable gate array key players, the market is classified as highly competitive. The key players operating in the field programmable gate array industry are concentrating on product development, strategic alliances, expansion, and mergers & acquisitions to remain competitive in the industry. For instance, in May 2023, Intel’s Programmable Solutions Group announced Agilex 7 FPGAs with R-Tile. Additionally, this product from the company is projected to be the first FPGA with CXL and PCIe 5.0 capabilities.
Moreover, in May 2023, AMD Automotive launched XA AU10P and XA AU15P Cost-optimized Processors. Additionally, these processors are suitable for use in advanced driver-assistance systems (ADAS) sensor applications and have been qualified for usage in the automotive industry.
Company Coverage (Company Profile, Sales Revenue, Price, Gross Margin, Main Products etc.):
- Achronix Semiconductor Corporation
- Intel Corporation
- Xilinx, Inc.
- Atmel Corporation
- Lattice Semiconductor Corporation
- NVIDIA Corporation
- Broadcom
- Microchip Technology Inc.
- Teledyne e2v Ltd.
- AMD, Inc.
- Qualcomm Technologies, Inc.
- Quicklogic Corporation
Product Type Coverage (Market Size & Forecast, Main Consumer Analysis etc.):
- High-end
- Mid-range
- Low-end
Technology Coverage (Market Size & Forecast, Main Consumer Analysis etc.):
- EEPROM
- SRAM
- Flash
- Antifuse
- Others
Application Coverage (Market Size & Forecast, Main Consumer Analysis etc.):
- Military & Aerospace
- Consumer Electronics
- Telecom
- Automotive
- Data Processing
- Industrial
- Others
Region Coverage (Regional Consumption, Demand & Forecast by Countries etc.):
- North America (U.S., and Canada)
- Europe (Germany, U.K., France, Italy, Spain etc.)
- Asia-Pacific (China, India, Japan, Indonesia, Malaysia, Australia, South Korea, etc.)
- South America (Brazil, Mexico, Argentina etc.)
- Middle East & Africa (Saudi Arabia, Kuwait, UAE, South Africa etc.)
Table Of Content
1. Field Programmable Gate Array (FPGA) Market Overview
1.1. Product Overview and Scope of Field Programmable Gate Array (FPGA)
1.2. Global Market Growth Prospects and Revenue Estimates
1.3. Global Field Programmable Gate Array (FPGA) Market Size Growth Rate Analysis by Product Type 2020 VS 2027
1.3.1. High-end
1.3.2. Mid-range
1.3.3. Low-end
1.4. Global Field Programmable Gate Array (FPGA) Consumption Comparison by Technology: 2020 VS 2027
1.4.1. EEPROM
1.4.2. SRAM
1.4.3. Flash
1.4.4. Antifuse
1.4.5. Others
1.5. Global Field Programmable Gate Array (FPGA) Consumption Comparison by Application: 2020 VS 2027
1.5.1. Military & Aerospace
1.5.2. Consumer Electronics
1.5.3. Telecom
1.5.4. Automotive
1.5.5. Data Processing
1.5.6. Industrial
1.5.7. Others
1.6. Global Field Programmable Gate Array (FPGA) Market Size Estimates and Forecasts by Region: 2020 VS 2027
1.6.1. North America Field Programmable Gate Array (FPGA) Estimates
1.6.2. Europe Field Programmable Gate Array (FPGA) Estimates
1.6.3. China Field Programmable Gate Array (FPGA) Estimates
1.6.4. Japan Field Programmable Gate Array (FPGA) Estimates
2. Market Competition by Manufacturers
2.1. Global Field Programmable Gate Array (FPGA) Revenue Market Share by Manufacturers (2020)
2.2. Field Programmable Gate Array (FPGA) Market Share by Company Product Type (Tier 1, Tier 2 and Tier 3)
2.3. Global Field Programmable Gate Array (FPGA) Average Price by Manufacturers (2016-2021)
2.4. Manufacturers Field Programmable Gate Array (FPGA) Production Sites, Area Served, Product Types
2.5. Field Programmable Gate Array (FPGA) Market Competitive Situation and Trends
2.5.1. Field Programmable Gate Array (FPGA) Market Concentration Rate
2.5.2. Mergers & Acquisitions, Expansion
3. Global Field Programmable Gate Array (FPGA) Consumption by Region (2016-2021)
3.1. Global Field Programmable Gate Array (FPGA) Consumption by Region
3.2. Global Field Programmable Gate Array (FPGA) Consumption Market Share by Region
3.2.1. North America
3.2.2. North America Field Programmable Gate Array (FPGA) Consumption Growth Rate (2016-2021)
3.2.3. North America Field Programmable Gate Array (FPGA) Consumption, Price and Gross Margin (2016-2021)
3.2.4. North America Field Programmable Gate Array (FPGA) Consumption by Country
3.2.4.1. U.S.
3.2.4.2. Canada
3.2.5. Europe
3.2.6. Europe Field Programmable Gate Array (FPGA) Consumption Growth Rate (2016-2021)
3.2.7. Europe Field Programmable Gate Array (FPGA) Consumption, Price and Gross Margin (2016-2021)
3.2.8. Europe Field Programmable Gate Array (FPGA) Consumption by Country
3.2.8.1. Germany
3.2.8.2. U.K.
3.2.8.3. France
3.2.8.4. Italy
3.2.8.5. Spain
3.2.9. Asia Pacific
3.2.10. Asia Pacific Field Programmable Gate Array (FPGA) Consumption Growth Rate (2016-2021)
3.2.11. Asia Pacific Field Programmable Gate Array (FPGA) Consumption, Price and Gross Margin (2016-2021)
3.2.12. Asia Pacific Field Programmable Gate Array (FPGA) Consumption by Country
3.2.12.1. China
3.2.12.2. India
3.2.12.3. Japan
3.2.12.4. Indonesia
3.2.12.5. Malaysia
3.2.12.6. Australia
3.2.12.7. South Korea
3.2.13. South America
3.2.14. South America Field Programmable Gate Array (FPGA) Consumption Growth Rate (2016-2021)
3.2.15. South America Field Programmable Gate Array (FPGA) Consumption, Price and Gross Margin (2016-2021)
3.2.16. South America Field Programmable Gate Array (FPGA) Consumption by Country
3.2.16.1. Brazil
3.2.16.2. Mexico
3.2.16.3. Argentina
3.2.17. Middle East and Africa
3.2.18. Middle East and Africa Field Programmable Gate Array (FPGA) Consumption Growth Rate (2016-2021)
3.2.19. Middle East and Africa Field Programmable Gate Array (FPGA) Consumption, Price and Gross Margin (2016-2021)
3.2.20. Middle East and Africa Field Programmable Gate Array (FPGA) Consumption by Country
3.2.20.1. Saudi Arabia
3.2.20.2. Kuwait
3.2.20.3. UAE
3.2.20.4. South Africa
4. Global Field Programmable Gate Array (FPGA) Consumption by Product Type (2016-2021)
4.1. Global Field Programmable Gate Array (FPGA) Price by Application (2016-2021)
4.2. Global Field Programmable Gate Array (FPGA) Revenue Market Share by Product Type (2016-2021)
4.2.1. High-end
4.2.2. Mid-range
4.2.3. Low-end
5. Global Field Programmable Gate Array (FPGA) Consumption by Technology (2016-2021)
5.1. Global Field Programmable Gate Array (FPGA) Price by Technology (2016-2021)
5.2. Global Field Programmable Gate Array (FPGA) Revenue Market Share by Technology (2016-2021)
5.2.1. EEPROM
5.2.2. SRAM
5.2.3. Flash
5.2.4. Antifuse
5.2.5. Others
6. Global Field Programmable Gate Array (FPGA) Consumption by End-user (2016-2021)
6.1. Global Field Programmable Gate Array (FPGA) Price by End-user (2016-2021)
6.2. Global Field Programmable Gate Array (FPGA) Revenue Market Share by End-user (2016-2021)
6.2.1. Military & Aerospace
6.2.2. Consumer Electronics
6.2.3. Telecom
6.2.4. Automotive
6.2.5. Data Processing
6.2.6. Industrial
6.2.7. Others
7. Key Companies Profiled
7.1. Achronix Semiconductor Corporation
7.1.1. Achronix Semiconductor Corporation Field Programmable Gate Array (FPGA) Corporation Information
7.1.2. Achronix Semiconductor Corporation Field Programmable Gate Array (FPGA) Product Portfolio
7.1.3. Achronix Semiconductor Corporation Field Programmable Gate Array (FPGA) Consumption, Price and Gross Margin (2016-2021)
7.1.4. Achronix Semiconductor Corporation Main Business and Markets Served
7.1.5. Achronix Semiconductor Corporation Recent Developments/Updates
7.2. Intel Corporation
7.3. Xilinx, Inc.
7.4. Atmel Corporation
7.5. Lattice Semiconductor Corporation
7.6. NVIDIA Corporation
7.7. Broadcom
7.8. Microchip Technology Inc.
7.9. Teledyne e2v Ltd.
7.10. AMD, Inc.
7.11. Qualcomm Technologies, Inc.
7.12. Quicklogic Corporation
8. Marketing Channel, Distributors and Customers
8.1. Marketing Channel
8.2. Field Programmable Gate Array (FPGA) Distributors List
8.3. Field Programmable Gate Array (FPGA) Customers
9. Market Dynamics
9.1. Field Programmable Gate Array (FPGA) Industry Trends
9.2. Field Programmable Gate Array (FPGA) Growth Drivers
9.3. Field Programmable Gate Array (FPGA) Market Challenges
9.4. Field Programmable Gate Array (FPGA) Market Restraints
10. Global Field Programmable Gate Array (FPGA) Consumption and Demand Forecast, by Region (2022-2027)
10.1. Global Forecasted Demand Analysis of Field Programmable Gate Array (FPGA), by Regions and Country
10.1.1. North America Forecasted Consumption of Field Programmable Gate Array (FPGA) by Country
10.1.2. Europe Market Forecasted Consumption of Field Programmable Gate Array (FPGA) by Country
10.1.3. Asia Pacific Market Forecasted Consumption of Field Programmable Gate Array (FPGA) by Region
10.1.4. Latin America Forecasted Consumption of Field Programmable Gate Array (FPGA) by Country
10.1.5. Middle East and Africa Forecasted Consumption of Field Programmable Gate Array (FPGA) by Country
11. Global Field Programmable Gate Array (FPGA) Consumption and Demand Forecast, by Product Type Segments (2022-2027)
11.1. Global Forecasted Consumption of Field Programmable Gate Array (FPGA) by Product Type Segments (2022-2027)
11.2. Global Consumption and Price Forecast by Product Type Segments (2022-2027)
11.3. Global Forecasted Growth Rate of Field Programmable Gate Array (FPGA) by Product Type Segments (2022-2027)
12. Global Field Programmable Gate Array (FPGA) Consumption and Demand Forecast, by Technology Segments (2022-2027)
12.1. Global Forecasted Consumption of Field Programmable Gate Array (FPGA) by Technology Segments (2022-2027)
12.2. Global Consumption and Price Forecast by Technology Segments (2022-2027)
12.3. Global Forecasted Growth Rate of Field Programmable Gate Array (FPGA) by Technology Segments (2022-2027)
13. Global Field Programmable Gate Array (FPGA) Consumption and Demand Forecast, by Application Segments (2022-2027)
13.1. Global Forecasted Consumption of Field Programmable Gate Array (FPGA) by Application Segments (2022-2027)
13.2. Global Consumption and Price Forecast by Application Segments (2022-2027)
13.3. Global Forecasted Growth Rate of Field Programmable Gate Array (FPGA) by Application Segments (2022-2027)
14. Research Finding and Conclusion
15. Methodology and Data Source
15.1. Methodology/Research Approach
15.1.1. Research Programs/Product Type
15.1.2. Market Size Estimation
15.1.3. Market Breakdown and Data Triangulation
15.2. Data Source
15.2.1. Secondary Sources
15.2.2. Primary Sources
15.3. Author List
15.4. Disclaimer
Research Methodology
Our research studies are primarily performed in five phases which include Secondary Research, Primary Research, Subject Matter Expert Advice, Quality Check, and Final Review. The process opted for conducting thorough research to make authentic business reports is briefly described below-
Secondary Research-
- Based on the understanding of requirements, we conducted secondary research to identify the Segment specifications, qualitative and quantitative data along with the factors responsible for the growth of the market.
- The secondary sources referred for the study include press releases, company annual reports, and research papers related to the industry.
- Various sources such as industry magazines, trade journals, government websites, and associations were also reviewed for gathering precise analysis on opportunities for business expansions in the market.
- Moreover, quantitative as well as qualitative data were also extracted from paid databases, which included Reuters, Factiva, Bloomberg, One Source, and Hoovers, which proved to be useful for in-depth technical study of the market.
Primary Research-
- The research carried out during the desk research was verified by primary interviews. Primary research was scheduled with a number of industry experts for conducting telephonic interviews, and also our team send questionnaires through their official emails.
- The secondary data collected was then verified by various industry participants which included Segment managers, marketing managers, VPs, CEOs, purchasing managers, subject matter experts.
- An interview with the mentioned participants aids invalidation of our research findings regarding the Segment.
- It helps in the provision of first-hand data on factors such as market size, growth, regional trends, market trends, and competition in the industry. This approach makes our findings precise in order to help our clients in strategic decision-making processes.
Subject Matter Advice-
- The secondary and primary research key findings were then validated by the in-house subject matter experts having extensive experience in the market research industry.
- Specific requirements of the clients were reviewed by the experts to check for completion of the market study. Experts help in channelizing the representation skills of the analyst in terms of providing data that can be easily understood by our customers.
Quality Check-
- The analysis done by the research team was further reviewed to check for data accuracy provided to suit the clients’ specific requirements.
- This revision was done in various phases to check the data authenticity and to remove negligible errors in the final compilation.
Final Review-
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