Embedded - FPGAs (Field Programmable Gate Array)

Image Part Number Description / PDF Quantity Rfq
XC5VFX70T-1FFG665C

XC5VFX70T-1FFG665C

Xilinx

IC FPGA 360 I/O 665FCBGA

0

XC7VX550T-2FFG1158C

XC7VX550T-2FFG1158C

Xilinx

IC FPGA 350 I/O 1158FCBGA

0

XCV600-6BG560C

XCV600-6BG560C

Xilinx

FPGA, 3456 CLBS, 661111 GATES, 3

67

XC5VFX70T-2FFG665I

XC5VFX70T-2FFG665I

Xilinx

IC FPGA 360 I/O 665FCBGA

0

XC4VLX160-11FF1148I

XC4VLX160-11FF1148I

Xilinx

IC FPGA 768 I/O 1148FCBGA

0

XC6VLX195T-3FF784C

XC6VLX195T-3FF784C

Xilinx

IC FPGA 400 I/O 784FCBGA

0

XC3S250E-4VQG100C

XC3S250E-4VQG100C

Xilinx

IC FPGA 66 I/O 100VQFP

0

XC7VX330T-2FFV1761C

XC7VX330T-2FFV1761C

Xilinx

IC FPGA 700 I/O 1760FCBGA

0

XC5VLX110-1FFG676I

XC5VLX110-1FFG676I

Xilinx

IC FPGA 440 I/O 676FCBGA

0

XCVU3P-2FFVC1517E

XCVU3P-2FFVC1517E

Xilinx

IC FPGA 520 I/O 1517FCBGA

0

XC7K325T-2FBG676I

XC7K325T-2FBG676I

Xilinx

IC FPGA 400 I/O 676FCBGA

0

XC2S50-5PQG208C

XC2S50-5PQG208C

Xilinx

IC FPGA 140 I/O 208QFP

0

XC3S1000-4FGG676C

XC3S1000-4FGG676C

Xilinx

IC FPGA 391 I/O 676FBGA

0

XCKU040-2FBVA900E

XCKU040-2FBVA900E

Xilinx

IC FPGA 468 I/O 900FCBGA

0

XC7A50T-2FTG256I

XC7A50T-2FTG256I

Xilinx

IC FPGA 170 I/O 256FTBGA

0

XC6VLX75T-2FFG484C

XC6VLX75T-2FFG484C

Xilinx

IC FPGA 240 I/O 484FBGA

0

XC6SLX16-L1CPG196I

XC6SLX16-L1CPG196I

Xilinx

IC FPGA 106 I/O 196CSBGA

0

XC4VFX20-11FFG672I

XC4VFX20-11FFG672I

Xilinx

IC FPGA 320 I/O 672FCBGA

0

XC4VLX40-10FFG668C

XC4VLX40-10FFG668C

Xilinx

IC FPGA 448 I/O 668FCBGA

0

XC5VFX100T-1FFG1738I

XC5VFX100T-1FFG1738I

Xilinx

IC FPGA 680 I/O 1738FCBGA

0

Embedded - FPGAs (Field Programmable Gate Array)

1. Overview

Field Programmable Gate Arrays (FPGAs) are reconfigurable semiconductor devices containing programmable logic blocks and interconnects. They enable hardware-level customization for specific computational tasks, offering flexibility unmatched by ASICs or microprocessors. In modern technology, FPGAs are critical for applications requiring parallel processing, low-latency execution, and real-time adaptability, such as AI acceleration, 5G communications, and industrial automation.

2. Main Types and Functional Classification

TypeFunctional FeaturesApplication Examples
Low-Cost FPGAsOptimized for budget-sensitive applications with minimal logic densityConsumer electronics, IoT edge devices
High-Performance FPGAsAdvanced DSP blocks, high-speed transceivers (>100 Gbps)Data centers, radar systems
SoC FPGAsIntegrated ARM processors with FPGA fabricIndustrial control, medical imaging
MPSoC FPGAsMulti-core processors with AI acceleration enginesAutonomous vehicles, 5G base stations

3. Architecture and Components

A typical FPGA consists of:

  • Logic Units: Configurable Lookup Tables (LUTs) and flip-flops for implementing Boolean functions
  • Routing Resources: Programmable interconnects for signal pathways
  • I/O Interfaces: Standardized protocols (PCIe, DDR4, Ethernet)
  • Embedded Memory: Block RAM and distributed RAM for data storage
  • Clock Management: Phase-Locked Loops (PLLs) for precise timing control
  • DSP Blocks: Hardened multipliers and accumulators for signal processing

4. Key Technical Specifications

ParameterDescriptionImportance
Logic CellsNumber of configurable logic units (10K 2M+)Determines computational complexity
Max FrequencyOperating speed (100 MHz 1 GHz)Impacts processing throughput
Power ConsumptionThermal Design Power (TDP: 1W 100W)Critical for battery-powered systems
Package TypeBGA, Flip-Chip, System-in-Package (SiP)Affects PCB integration
Memory BandwidthData transfer rate (10 GB/s 1 TB/s)Essential for AI/data-intensive tasks

5. Application Domains

  • Telecommunications: 5G NR base stations, optical network switches
  • Industrial: Motor control, machine vision systems
  • Automotive: ADAS sensor fusion, LiDAR processing
  • Healthcare: MRI image reconstruction, ultrasound beamforming
  • Aerospace: Satellite communication modems, flight control systems

6. Leading Manufacturers and Products

VendorRepresentative ProductKey Features
XilinxZynq UltraScale+ MPSoCQuad-core ARM Cortex-A53 + 1.6M logic cells
IntelStratix 10 GX10M logic elements, 14 Gbps transceivers
LatticeMachXO3DLow-power <100K LUTs with security features
MicrochipPolarFire SoC256-bit RISC-V processor, 4.9M logic cells

7. Selection Guidelines

Key considerations:

  • Evaluate required logic density and I/O bandwidth
  • Balance performance vs. power budget (e.g., automotive vs. data center)
  • Assess toolchain support (Vivado, Quartus, etc.)
  • Consider long-term availability for industrial/medical systems
  • Verify protocol compatibility (e.g., PCIe Gen5, DDR5)

8. Industry Trends

Future directions include:

  • AI-optimized FPGAs with integrated tensor cores
  • 3D-stacked memory integration for >1 TB/s bandwidth
  • Open-source toolchain adoption (e.g., GHDL, Yosys)
  • Heterogeneous computing with hybrid CPU-GPU-FPGA architectures
  • Advanced node processes (5nm/3nm) enabling 10M+ logic cells
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