ESD March 2025 Embedded World Issue

EW: FPGAS

by manufacturers such as iWave and enables designers to implement faster in their products. Companies can focus on their unique value proposition and core

5, enabling real-time visualisation and analysis at both local and remote locations. The FPGA powering the ULL streamer features HDMI RX and TX and Wi-Fi 5, enabling seamless data reception and transmission for real-time viewing, processing, and integration with displays. The Zynq UltraScale+ MPSoC is particularly efficient for video streaming purposes due to its integrated H.264/H.265 video codec unit. This feature allows for hardware-ac- celerated video encoding and decoding, making it highly suitable for high-definition video streaming. The Encoder captures high-quality video from 12G-SDI or HDMI 2.0 sources at up to 3840 x 2160p resolution and 60 frames per second. The video is captured during surgical procedures, encoded into smaller data packets and then streamed over Wi-Fi 5 through protocols like UDP, SRP, RTMP, and RTSP. The encoded data is sent to a decoder, which displays the video on high-speed displays like Apple Vision Pro. The ULL Streamer can be used for applications such as telemedicine, remote surgery, medical training, monitoring and simulations. Advantages of an FPGA system on module in product development An FPGA system on module contains all the essential components such as the FPGA, high-speed DDR memory, flash storage, power management, and interface controllers. A SoM supports high-speed transceiver blocks and multiple communication protocols, including Ethernet, USB, and PCIe, ensuring seamless connectivity and integration into various systems. A SoM based approach involves a shorter development time, and fewer mistakes during the development cycle which can help get to market faster. The system on modules are all pre-tested and qualified

competencies, rather than worry about the design complexity of the system on modules. The SoM approach for the FPGA SoCs further allows greater scalability for the end applications in terms of logic density, FPGA IOs, and a number of transceiver lanes. For example, a well-designed carrier board design architecture can cover system IO ports for multiple end products ranging from the FPGA with 192K logic cells to an FPGA with 1.1M logic cells. Also, the SoM approach allows migrating new generation SoC solutions without changing the product mechanical architecture and key carrier board design. This allows for lower development effort compared to a full hardware redesign from scratch. An FPGA system design involves hundreds of components, which requires the supply chain and procurement teams to interface with a large number of suppliers and co-ordinate pricing and delivery. Through a SoM approach, iWave and other SoM companies take the responsibility of maintaining a steady supply chain through forecasting with key suppliers and maintain a steady supply. This helps in better production lead times and better product pricing, since the SoM vendors are better able to manage economies of scale. The SoMs are all available with a pre validated BSP and design examples that can help you get started quickly. With system on modules, you can develop application software on the same produc- tion-ready hardware that you develop on, without needing to port your design from a development kit.

Visit iWave Global at embedded world: 1-210

35 ELECTRONICSPECIFIER.COM

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