Real-Time Control and Automation Framework for Acousto-Holographic Microscopy
Hasan Berkay Abdio\u{g}lu, Ya\u{g}mur I\c{s}{\i}k, Mustafa \.Ismail \.Inal, Nehir Serin, Kerem Bayer, Muhammed Furkan Ko\c{s}ar, Taha \"Unal, H\"useyin \"Uvet

TL;DR
This paper introduces a fully automated, high-throughput digital holographic microscopy system with real-time autofocus and object detection, significantly improving efficiency and reliability in cell biology imaging.
Contribution
It presents a novel integrated system combining GPU-accelerated reconstruction, YOLO-based detection, and a robust autofocus strategy for autonomous high-speed cell analysis.
Findings
Autonomous system achieves 50 fps data acquisition.
Robust autofocus method outperforms traditional techniques on noisy holograms.
Complete platform enables high-throughput, label-free cell screening.
Abstract
Manual operation of microscopes for repetitive tasks in cell biology is a significant bottleneck, consuming invaluable expert time, and introducing human error. Automation is essential, and while Digital Holographic Microscopy (DHM) offers powerful, label-free quantitative phase imaging (QPI), its inherently noisy and low-contrast holograms make robust autofocus and object detection challenging. We present the design, integration, and validation of a fully automated closed-loop DHM system engineered for high-throughput mechanical characterization of biological cells. The system integrates automated serpentine scanning, real-time YOLO-based object detection, and a high-performance, multi-threaded software architecture using pinned memory and SPSC queues. This design enables the GPU-accelerated reconstruction pipeline to run fully in parallel with the 50 fps data acquisition, adding no…
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Taxonomy
TopicsDigital Holography and Microscopy · Image Processing Techniques and Applications · Random lasers and scattering media
