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This study introduces an AI-driven automatic field-of-view (FOV) adjustment system for view-expansive microscopes, aimed at enhancing the efficiency of intracytoplasmic sperm injection (ICSI) procedures. By employing a long short-term memory (LSTM) model to analyze the pipette's motion and the operator's gaze in real-time, the system predicts optimal FOV settings, thereby streamlining workflow and reducing procedure times. Experimental results show a significant decrease in average task completion time from 60.5 to 48.0 seconds, allowing novice operators to perform at levels comparable to experts.
Novice ICSI operators can now match expert speeds, cutting procedure times by over 20% with AI-driven automatic FOV adjustments.
Intracytoplasmic sperm injection (ICSI) operators frequently adjust the field-of-view (FOV) during procedures, which interrupts workflow and increases procedure time. Conventional microscopes require manual objective lens switching and illumination adjustments to achieve different FOV sizes. We propose an AI-based automatic FOV adjustment method integrated with a view-expansive microscope. This microscope enables the simultaneous acquisition of a large FOV and high-resolution images using a single objective lens through multiview imaging with galvanometer mirrors and high-speed vision, thereby eliminating the need for physical lens exchanges. Our method utilizes a long short-term memory (LSTM) model to predict the appropriate FOV size based on real-time analysis of the pipette鈥檚 position and velocity, combined with the operator鈥檚 gaze position. The AI model is trained using ICSI procedure data from an expert with over five years of micromanipulation experience. Experimental evaluation with novice operators reveals that the proposed automatic FOV adjustment system significantly improves the ICSI procedure speed, reducing the average task completion time from 60.5 to 48.0 s ( $p\lt 0.001$ ). The experiments also demonstrate that this improvement enables novice operators to achieve ICSI working speeds equivalent to those of expert operators.