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Shack-Hartmann波前传感器图像自适应阈值的选取 被引量:14
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作者 夏明亮 李抄 +3 位作者 刘肇南 李大禹 胡立发 宣丽 《光学精密工程》 EI CAS CSCD 北大核心 2010年第2期334-340,共7页
Shack-Hartmann(S-H)波前传感器光斑图像阈值的选取对质心探测精度有较大的影响。本文分析了S-H波前传感器光斑图像的特点,研究了光斑图像阈值对质心探测精度的影响,在此基础上提出了一种基于灰度直方图原理的多峰自适应阈值选取方法。... Shack-Hartmann(S-H)波前传感器光斑图像阈值的选取对质心探测精度有较大的影响。本文分析了S-H波前传感器光斑图像的特点,研究了光斑图像阈值对质心探测精度的影响,在此基础上提出了一种基于灰度直方图原理的多峰自适应阈值选取方法。实验结果表明,对于信噪比>4的S-H波前传感器光斑图像,本方法能够比较有效地自动选取每帧图像的阈值;但对于信噪比<4的图像,分割效果不是很理想。将使用本阈值算法的S-H波前传感器应用到自适应光学系统中进行闭环校正实验,结果显示,校正后的系统波前误差从10.41λ(PV值,λ=632.8nm)降低到0.12λ,基本达到了衍射极限水平,表明本方法可以满足S-H波前传感器的实用要求。 展开更多
关键词 波前传感器 shack-hartmann波前传感器 阈值选取
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Learning-based cross-scale wavefront measurement with a hybrid Shack-Hartmann-digital holographic sensor
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作者 Ao Li Zeyu Gao +9 位作者 Jiawei Sun Yong Chen Qiang Yuan Xinlan Ge Chao Yang Licheng Zhu Shiqing Ma Ling Wei Shuai Wang Ping Yang 《Chinese Optics Letters》 2025年第12期82-87,共6页
A cross-scale composite wavefront measurement method based on deep learning is proposed to address local large gradient wavefront distortions from aero-optical effects.Since dynamic range and spatial resolution are us... A cross-scale composite wavefront measurement method based on deep learning is proposed to address local large gradient wavefront distortions from aero-optical effects.Since dynamic range and spatial resolution are usually a trade-off for most wavefront sensors,we propose a hybrid Shack-Hartmann-digital holographic wavefront sensing mechanism that includes a Shack-Hartmann wavefront sensor(SHWFS)and off-axis digital holography(OADH).Using the hybrid wavefront sensing mechanism and the data processing method,the reconstructed wavefront of SHWFS and the wrapped phase of OADH are obtained separately.A multi-input efficient network cal ed the multi-system wavefront measurement-net(MSWM-Net)with an attention mechanism is introduced to map the reconstructed wavefront of SHWFS and the wrapped phase of the OADH to the precise wavefront.Numerical simulations and comparisons with the deep learning phase unwrapping(DLPU)-model-based phase unwrapping method and classical phase unwrapping technique demonstrate that this method resolves the chal enge of mismatched data scales across the two measurement systems,enabling rapid and high-precision wavefront sensing. 展开更多
关键词 composite wavefront measurement shack-hartmann wavefront sensor off-axis digital holography
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Compact Fundus Imaging System Using Shack-Hartmann Wavefront Sensing for High-speed Auto-focus
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作者 LIN Zhe-Kai CHEN Long +7 位作者 ZHENG Geng-Yong HUANG Jin-Tian DONG Jia-Xin YANG Shang-Pan DING Wen-Zheng HAN Ding-An WANG Xue-Hua ZENG Ya-Guang 《生物化学与生物物理进展》 2026年第4期1076-1086,共11页
Objective The widespread adoption of portable fundus cameras for primary care and community screening is hindered by limitations in current autofocus(AF)technologies.Image-based methods relying on sharpness evaluation... Objective The widespread adoption of portable fundus cameras for primary care and community screening is hindered by limitations in current autofocus(AF)technologies.Image-based methods relying on sharpness evaluation require iterative searches,resulting in slow convergence,while projection-based techniques are susceptible to optical artifacts and calibration errors.To address these challenges,this study introduces a novel AF system based on direct wavefront sensing,designed to deliver simultaneous high speed,high precision,and operational robustness within the compact form factor essential for portable ophthalmic devices.Methods Our approach fundamentally reimagines the AF process by directly measuring the ocular wavefront aberration.We developed a custom portable fundus camera integrating a miniaturized Shack-Hartmann wavefront sensor(SHWS)into the optical path.An 850 nm laser diode projects a point source onto the retina via oblique illumination to minimize corneal reflections.Light scattered from this spot carries the eye’s refractive error through the imaging optics and is directed to the SHWS,positioned at a plane optically conjugate to the primary color CMOS imaging sensor.A microlens array within the SHWS samples the incident wavefront,generating a pattern of focal spots on a CCD.Real-time centroid analysis of these spots provides a map of local wavefront slopes.These measurements are processed through a singular value decomposition(SVD)algorithm to fit a Zernike polynomial basis set,enabling real-time reconstruction of the wavefront phase.The defocus component(S)is extracted from the second-order Zernike coefficients,providing a direct,quantitative measure of the refractive error in diopters.This value serves as a precise error signal in a closed-loop control system,which commands a voice-coil actuated focusing lens to its null position in a single,deterministic step,eliminating the need for iterative search algorithms.Results Comprehensive evaluation demonstrated the system’s high performance.Testing on a calibrated model eye(OEMI-7)established a highly linear relationship between the computed defocus S and the focusing lens position across a±20 Diopter(D)compensation range,achievable within a 5 mm mechanical travel.The system achieved a focusing precision of 0.08 D,corresponding to an 18-fold improvement over a conventional projection spot-size method tested under identical conditions.The total focus acquisition time,encompassing wavefront measurement,computation,and lens actuation,averaged under 0.5 s.Clinical validation with 25 human volunteers(50 eyes,refractive range-15 D to+10 D)confirmed practical efficacy.The wavefront-sensing AF succeeded in 92%of attempts with a mean time of 0.5 s,substantially outperforming a projection-based benchmark which achieved only a 32%success rate with an average time of 4.25 s.The system provided instantaneous directional guidance and maintained stability during minor ocular movements.Objective assessment of image quality,via amplitude contrast of retinal vasculature,showed consistent and significant enhancement following AF correction across the entire tested diopter range.Conclusion This work successfully implements and validates a direct wavefront-sensing autofocus paradigm for portable fundus cameras.By directly quantifying and compensating for the optical defocus aberration,this method bypasses the fundamental limitations of image-processing and projection-based techniques,enabling rapid,precise,and deterministic diopter compensation.The developed system delivers an exceptional combination of a wide operational range(±20 D),high accuracy(0.08 D),fast convergence(0.5 s),and a compact physical footprint.This technology provides a practical and highperformance focusing solution capable of enhancing the reliability,throughput,and diagnostic utility of portable retinal imaging in large-scale screening applications.Future efforts will be directed towards system cost optimization and performance adaptation for diverse ocular conditions. 展开更多
关键词 portable fundus camera autofocus wavefront detection shack-hartmann wavefront sensor
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Accuracy characterization of Shack-Hartmann sensor with residual error removal in spherical wavefront calibration 被引量:9
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作者 Yi He Mingdi Bao +3 位作者 Yiwei Chen Hong Ye Jinyu Fan Guohua Shi 《Light: Advanced Manufacturing》 2023年第4期55-65,共11页
The widely used Shack-Hartmann wavefront sensor(SHWFS)is a wavefront measurement system.Its measurement accuracy is limited by the reference wavefront used for calibration and also by various residual errors of the se... The widely used Shack-Hartmann wavefront sensor(SHWFS)is a wavefront measurement system.Its measurement accuracy is limited by the reference wavefront used for calibration and also by various residual errors of the sensor itself.In this study,based on the principle of spherical wavefront calibration,a pinhole with a diameter of 1μm was used to generate spherical wavefronts with extremely small wavefront errors,with residual aberrations of 1.0×10^(−4)λRMS,providing a high-accuracy reference wavefront.In the first step of SHWFS calibration,we demonstrated a modified method to solve for three important parameters(f,the focal length of the microlens array(MLA),p,the sub-aperture size of the MLA,and s,the pixel size of the photodetector)to scale the measured SHWFS results.With only three iterations in the calculation,these parameters can be determined as exact values,with convergence to an acceptable accuracy.For a simple SHWFS with an MLA of 128×128 sub-apertures in a square configuration and a focal length of 2.8 mm,a measurement accuracy of 5.0×10^(−3)λRMS was achieved across the full pupil diameter of 13.8 mm with the proposed spherical wavefront calibration.The accuracy was dependent on the residual errors induced in manufacturing and assembly of the SHWFS.After removing these residual errors in the measured wavefront results,the accuracy of the SHWFS increased to 1.0×10^(−3)λRMS,with measured wavefronts in the range ofλ/4.Mid-term stability of wavefront measurements was confirmed,with residual deviations of 8.04×10^(−5)λPV and 7.94×10^(−5)λRMS.This study demonstrates that the modified calibration method for a high-accuracy spherical wavefront generated from a micrometer-scale pinhole can effectively improve the accuracy of an SHWFS.Further accuracy improvement was verified with correction of residual errors,making the method suitable for challenging wavefront measurements such as in lithography lenses,astronomical telescope systems,and adaptive optics. 展开更多
关键词 shack-hartmann wavefront sensor Spherical wavefront calibration Residual aberration correction High-accuracy measurement of wavefronts
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Large dynamic range Shack-Hartmann wavefront sensor based on adaptive spot matching 被引量:2
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作者 Jiamiao Yang Jichong Zhou +3 位作者 Lirong Qiu Rongjun Shao Linxian Liu Qiaozhi He 《Light: Advanced Manufacturing》 2024年第1期40-49,共10页
The Shack-Hartmann wavefront sensor(SHWS)is widely used for high-speed,precise,and stable wavefront measurements.However,conventional SHWSs encounter a limitation in that the focused spot from each microlens is restri... The Shack-Hartmann wavefront sensor(SHWS)is widely used for high-speed,precise,and stable wavefront measurements.However,conventional SHWSs encounter a limitation in that the focused spot from each microlens is restricted to a single microlens,leading to a limited dynamic range.Herein,we propose an adaptive spot matching(ASM)-based SHWS to extend the dynamic range.This approach involves seeking an incident wavefront that best matches the detected spot distribution by employing a Hausdorff-distance-based nearest-distance matching strategy.The ASM-SHWS enables comprehensive spot matching across the entire imaging plane without requiring initial spot correspondences.Furthermore,due to its global matching capability,ASM-SHWS can maintain its capacity even if a portion of the spots are missing.Experiments showed that the ASM-SHWS could measure a high-curvature spherical wavefront with a local slope of 204.97 mrad,despite a 12.5%absence of spots.This value exceeds that of the conventional SHWS by a factor of 14.81. 展开更多
关键词 Wavefront sensing Large dynamic range shack-hartmann sensor
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Wave-front correction of high-intensity fs laser beams by using closed-loop adaptive optics system 被引量:2
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作者 WANG Zhaohua JIN Zhan ZHENG Jiaan WANG Peng WEI Zhiyi ZHANG Jie 《Science China(Physics,Mechanics & Astronomy)》 SCIE EI CAS 2005年第1期122-128,共7页
We developed an adaptive optics system to correct the wave-front distortion of an intense fs laser beam from our multi-TW laser system, Jiguang II. In this paper, the instruments of the adaptive optical system are des... We developed an adaptive optics system to correct the wave-front distortion of an intense fs laser beam from our multi-TW laser system, Jiguang II. In this paper, the instruments of the adaptive optical system are described and the experimental results of the closed-loop wave-front correction are presented. A distorted laser wave-front of 20 wavelengths of P-V values was corrected to 0.15 wavelength of P-V values. The beam quality of the laser system varies from 3.5 diffraction limit to 1.5 diffraction limit. 展开更多
关键词 shack-hartmann WAVE-FRONT sensor adaptive optics system FEMTOSECOND laser DIFFRACTION limit.
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Surface Measurement Using Compressed Wavefront Sensing
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作者 Eddy Mun Tik CHOW Ningqun GUO +1 位作者 Edwin CHONG Xin WANG 《Photonic Sensors》 SCIE EI CAS CSCD 2019年第2期115-125,共11页
Compressed sensing leverages the sparsity of signals to reduce the amount of measurements required for its reconstruction. The Shack-Hartmann wavefront sensor meanwhile is a flexible sensor where its sensitivity and d... Compressed sensing leverages the sparsity of signals to reduce the amount of measurements required for its reconstruction. The Shack-Hartmann wavefront sensor meanwhile is a flexible sensor where its sensitivity and dynamic range can be adjusted based on applications. An investigation is done by using compressed sensing in surface measurements with the Shack-Hartmann wavefront sensor. The results show that compressed sensing paired with the Shack-Hartmann wavefront sensor can reliably measure surfaces accurately. The performance of compressed sensing is compared with those of the iterative modal-based wavefront reconstruction and Fourier demodulation of Shack-Hartmann spot images. Compressed sensing performs comparably to the modal based iterative wavefront reconstruction in both simulation and experiment while performing better than the Fourier demodulation in simulation. 展开更多
关键词 shack-hartmann WAVEFRONT sensor SURFACE MEASUREMENT compressed SENSING
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