| High-End FPGA | Large LUT-based fabric with extensive programmable routing, hardened memory controllers, and dedicated arithmetic blocks | Approx. 7 nm to 16 nm | About 100,000 to more than 2 million logic elements | Distributed RAM, block RAM, and large embedded memory arrays | Hundreds to several thousand DSP-oriented blocks, depending on device size | Multi-gigabit serial transceivers, PCI Express, Ethernet, and high-bandwidth memory interfaces | Data-center acceleration, networking, telecom infrastructure, imaging, and high-performance computing |
| Mid-Range FPGA | Balanced programmable logic fabric with integrated RAM, DSP, clocking, and general-purpose I/O | Approx. 12 nm to 40 nm | About 20,000 to 500,000 logic elements | Block RAM and distributed memory suitable for buffering and control functions | Dozens to several hundred DSP blocks | PCI Express, Gigabit Ethernet, DDR memory, and selected serial transceivers | Industrial automation, machine vision, medical equipment, test systems, and embedded control |
| Low-Power FPGA | Compact LUT fabric optimized for low static and dynamic power consumption | Approx. 22 nm to 65 nm | About 2,000 to 100,000 logic elements | Small to medium embedded RAM capacity | Limited or moderate DSP resources | General-purpose I/O, low-voltage interfaces, and selected SERDES options | Portable electronics, consumer devices, battery-powered systems, and sensor hubs |
| FPGA with Integrated Processor System | Programmable logic combined with hardened application processors, memory controllers, and peripheral interfaces | Approx. 12 nm to 28 nm | About 50,000 to more than 1 million logic elements | On-chip RAM plus support for external DDR memory | Integrated DSP blocks for signal processing and hardware acceleration | Ethernet, PCI Express, USB, memory interfaces, and processor peripheral buses | Robotics, embedded Linux platforms, industrial vision, aerospace systems, and edge computing |
| FPGA Accelerator Family | Highly parallel programmable fabric designed for custom pipelines and workload-specific acceleration | Approx. 7 nm to 28 nm | About 100,000 to more than 2 million logic elements | Large block RAM, distributed RAM, and optional high-bandwidth memory support | High-density DSP resources for matrix, filtering, compression, and artificial-intelligence workloads | PCI Express, high-speed Ethernet, coherent host links, and multi-gigabit transceivers | Cloud computing, financial modeling, video processing, networking, and artificial intelligence inference |
| Radiation-Tolerant FPGA | Logic architecture designed for reliability under radiation exposure and harsh operating conditions | Approx. 65 nm to 180 nm, depending on qualification requirements | About 10,000 to 500,000 logic elements | Radiation-tolerant block memory and configuration-storage features | Application-dependent DSP and arithmetic resources | Space-qualified I/O, serial interfaces, LVDS, and mission-specific communication links | Satellites, launch vehicles, defense electronics, scientific instruments, and high-reliability control systems |
| Automotive-Grade FPGA | Programmable logic with functional-safety features, extended temperature support, and automotive interfaces | Approx. 16 nm to 65 nm | About 20,000 to 500,000 logic elements | Embedded RAM for sensor aggregation, buffering, and deterministic control | Moderate DSP capacity for radar, camera, and sensor-processing workloads | Automotive Ethernet, MIPI, LVDS, CAN-related system integration, and high-speed sensor links | Advanced driver-assistance systems, sensor fusion, in-vehicle networking, and display processing |
| Security-Focused FPGA | Programmable logic with secure boot, encrypted configuration, key management, and tamper-resistant features | Approx. 16 nm to 65 nm | About 20,000 to 1 million logic elements | Embedded memory with configuration-protection and access-control mechanisms | Dedicated or programmable resources for cryptographic and packet-processing workloads | Secure Ethernet, PCI Express, serial transceivers, and protected management interfaces | Critical infrastructure, defense, communications equipment, payment systems, and industrial security |