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Field-Programmable System-on-Chip-Based Control System for Real-Time Distortion Correction in Optical Imaging

机译:基于现场可编程系统的基于芯片的控制系统,用于光学成像中的实时失真校正

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The digital transition requires real-time control of complex systems with short loop time and low latency in various applications. Field-programmable gate arrays (FPGAs) are, in principle, capable of complying with this task but demand, on the other hand, a high programming effort. In this article, we propose a field-programmable system on chip (FPSoC) as a hybrid solution of an FPGA and a central processing unit (CPU) on a single monolithic die to combine the strengths of both architectures. An FPSoC-based adaptive optical wavefront correction system is presented as a case study to correct camera images in real time that are distorted by time-varying aberrations. While a short total loop time is achieved by interfacing the camera and a deformable mirror on a low level directly with the FPGA, all computationally nonintensive tasks are implemented on the CPU to keep the flexibility, reusability, and development expense low. The system corrects the optical distortion of water surface waves with up to 3600 control cycles per second and spatially attenuates the distortion up to Zernike polynomial 14 with up to 150 Hz. The FPSoC system enables fast spatiotemporal aberration correction in technical processes and offers a perspective for measuring complex flows through fluctuating interfaces.
机译:数字转换需要具有短路时间的复杂系统的实时控制,以及各种应用中的低延迟。实地可编程门阵列(FPGA)原则上是能够遵守这项任务,而是需要遵守这项任务,但另一方面,需要进行高编程工作。在本文中,我们提出了一种芯片(FPSOC)的现场可编程系统,作为单片模具上的FPGA和中央处理单元(CPU)的混合解决方案,以结合两种架构的强度。基于FPSOC的自适应光学波前校正系统作为案例研究,以实时纠正相机图像,这些时间随着时变差而扭曲。虽然通过在直接与FPGA直接在低电平上接合相机和可变形镜,但在CPU上实现了所有计算不受限制的任务,以保持灵活性,可重用性和开发费用低。该系统校正水面波的光学变形,每秒高达3600个控制循环,并且在空间上衰减到Zernike多项式14,最多150 Hz。 FPSOC系统在技术过程中实现了快速的时空像差校正,并提供了通过波动接口测量复杂流的透视图。

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