LogicTronix is developing high-performance custom CNN accelerator RTL IP tailored for vision-based machine learning workloads on FPGA platforms.

  • This accelerator is designed with a focus on low latency, high throughput, and efficient resource utilization, enabling real-time image classification, object detection, and advanced vision analytics directly at the edge.
  • By leveraging optimized dataflow architectures and hardware-friendly neural network designs, LogicTronix ensures scalable and power-efficient deployment across AMD-Xilinx FPGA platforms, ranging from low-power Artix series devices to ultra-high-density, high-throughput Versal architectures, enabling optimized solutions for both edge and high-performance computing applications.

In parallel, LogicTronix is expanding its capabilities into next-generation Edge AI and Physical AI solutions and LLM acceleration using MPSoC and Versal platforms.

  • This solution target intelligent systems that require on-device processing, reduced cloud dependency, and faster decision-making. With the integration of AI engines, programmable logic, and embedded processors.
  • LogicTronix delivers end-to-end acceleration frameworks capable of supporting both vision ML and large model inference for applications in automotive, robotics, autonomous systems, and industrial AI.
LogicTronix custom AI Accelerator RTL IP solution with AMD-Xilinx FPGA for Physical AI application

Figure – LogicTronix custom AI Accelerator RTL IP solution with AMD-Xilinx FPGA for Physical AI application

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