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Advantech Co., Ltd. - VEGA-4000
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Reconfigurable Video Content Intelligence Accelerator

Model: VEGA-4000

  • High performance Xilinx Ultrascale+ FPGA (XCVU9P)
  • 16GB DDR4 memory in 4-channel configuration with ECC support
  • PCIe Gen-3 x16 host interface
  • Low profile form factor
  • Up to 75W slot power consumption
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VEGA-4000 is an FPGA-based low profile PCI Express card which is ideal for accelerating machine learning, data analytics and live video processing applications both in appliances and in scale-out data center servers. As user-generated video content streaming becomes more and more pervasive, there is a corresponding service demand to analyze and classify this content in real time to ensure compliance to rules and to allow further innovative applications to be developed. The resulting processing workloads are both rapidly escalating and rapidly evolving, so the need of processing acceleration and flexibility is crucial. The latest generation of Field Programmable Gate Arrays (FPGAs) from Xilinx offers this acceleration while retaining future-proof reconfigurable capability; and Advantech’s new VEGA-4000 can provide access to this technology in a deployable PCI Express form factor, reducing development risk and gaining a time-to-market advantage.

The VEGA-4000 is fully supported by the Xilinx SDAccel development environment with FFMPEG integration, and Xilinx also offers optimized support libraries for several Deep Neural Network frameworks including Caffe and Mxnet, with support for TensorFlow coming soon. Advantech can also offer custom development support services for VEGA-4000 including FPGA IP provision and system integration and the board can be delivered already preintegrated in a range of server platforms.

  • High performance Xilinx Ultrascale+ FPGA (XCVU9P)
  • 16GB DDR4 memory in 4-channel configuration with ECC support
  • PCIe Gen-3 x16 host interface
  • Low profile form factor
  • Up to 75W slot power consumption
  • Fully Xilinx SDAccel supported
  • Applications:
  • Social media video analytics
  • Machine learning
  • Autonomous driving
  • Cloud-based surveillance analytics
  • Video transcoding
 
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