U54 Linux-capable RISC V application processor
The SiFive U54 Standard Core is a single-core instantiation of the world's first RISC-V application processor, capable of support…
- RISC-V
Compute and acceleration IP cores are specialized hardware blocks designed to improve performance and efficiency in modern SoC and ASIC designs.
This category covers a diverse ecosystem of processing technologies, including CPU and microcontroller cores for embedded control and software execution, AI/ML accelerators for neural network processing, DSP and math engines for real-time signal processing, data compression accelerators for efficient storage and communications, and eFPGA fabrics that provide post-silicon flexibility and hardware reconfigurability.
Whether you are designing for edge AI, automotive systems, consumer electronics, or data center acceleration, you can identify the right IP to optimize your system performance.
U54 Linux-capable RISC V application processor
The SiFive U54 Standard Core is a single-core instantiation of the world's first RISC-V application processor, capable of support…
E76-MC Quad-core 32-bit embedded processor
The SiFive E76-MC Standard Core is a high-performance quad-core 32-bit embedded processor which is fully-compliant with the RISC-…
E76 High performance 32-bit embedded processor
The SiFive E76 Standard Core is a high-performance 32-bit embedded processor which is fully-compliant with the RISC-V ISA.
The SiFive E34 Standard Core adds single-precision floating-point to the SiFive E31 Standard Core, the worldÃ?¢Ã?Â?Ã?Â?s most de…
E24 High-performance microcontroller with hardware support
The SiFive E24 Standard Core is a high-performance microcontroller with hardware support for single-precision floating-point capa…
E21 High-performance, full-featured Embedded processor
The SiFive E21 Standard Core is a high-performance, full-featured embedded processor designed to address microcontroller applicat…
E20 Smallest, most efficient RISC V Ccore
The SiFive E20 Standard Core is an extremely efficient implementation of the E2 Series configured for very low area and power.
The NOEL-V is a synthesizable VHDL model of a processor that implements the RISC-V architecture.
High-performance 32-bit RISC CPU
The eSi-3250 32-bit CPU is targeted specifically for applications with high performance requiring caching, due to the use of slow…
Compact, low-power 32-bit RISC CPU
The eSi-3200 32-bit CPU is the mid-range member in the eSi-RISC family of processor cores.
Low-power, 16-bit RISC CPU with cache
The eSi-1650 16-bit CPU with instruction cache is targeted specifically for low-power applications, where typically an 8-bit CPU …
Low-cost & low-power 16-bit RISC CPU
eSi-RISC's eSi-1600 16-bit RISC CPU IP core is an extremely small, low-cost and low-power processor ideal for integration into AS…
FSK Demodulator,BCH Decoder,Command Decoder,Validator,Convolution Encoder IPs
A lot of development for implementing communication subsystem for a student nano-satellite was also undertaken.
Convolutional Neural Network (CNN) Compact Accelerator
Take advantage of the power of FPGA’s parallel processing to implement CNNs.
ColdFire V4 Core with industry proven platform peripherals
The ColdFire V4 Core & Standard Product Platform (SPP) C1 (CFV4SPPC1) combines the ColdFire V4 Core with industry proven platform…
ColdFire V4 Core & Standard Product Platform (SPP) C2
The ColdFire V4 Core & Standard Product Platform (SPP) C2 (CFV4SPPC2) combines the ColdFire V4 Core with industry proven platform…
The 8b10b line code is widely used to achieve DC-balance and bounded disparity when transmitting serial data over a medium.
Many digital systems use filters to remove noise, provide spectral shaping, or perform signal detection.
Reed-Solomon codes are used to perform Forward Error Correction (FEC).
Reed-Solomon codes are used to perform Forward Error Correction.