<?xml version="1.0" encoding="UTF-8"?><oembed><type>video</type><version>1.0</version><html>&lt;iframe src=&quot;https://www.loom.com/embed/ffbe9522e6d84651a0c75eff44ffc7d8&quot; frameborder=&quot;0&quot; width=&quot;1108&quot; height=&quot;831&quot; webkitallowfullscreen mozallowfullscreen allowfullscreen&gt;&lt;/iframe&gt;</html><height>831</height><width>1108</width><provider_name>Loom</provider_name><provider_url>https://www.loom.com</provider_url><thumbnail_height>831</thumbnail_height><thumbnail_width>1108</thumbnail_width><thumbnail_url>https://cdn.loom.com/sessions/thumbnails/ffbe9522e6d84651a0c75eff44ffc7d8-ec9e92602151fdc9.gif</thumbnail_url><duration>107.378</duration><title>Optimizing Parameters for Advanced Circuit Design in Dynamic Momentum Computing</title><description>In this video, I discuss our ongoing work on optimizing parameters for the circuit design related to Bose and Gigahertz subnormal dynamic momentum computing. We are focusing on key aspects such as inductance, relaxation time, and bias between states to enhance the performance of radiometric flux logic cells. I present some of the parameters we are analyzing, specifically s and gamma, as part of our deep study research. I encourage everyone to consider these configurations and their potential for achieving effective bit flips. Your insights and feedback on this research would be greatly appreciated.</description></oembed>