Centroid Extraction Method Based on Multi-Scale Gaussian Fitting and Subpixel Edge Reconstruction
Метод определения центроида на основе многомасштабной гауссовой аппроксимации и субпиксельной реконструкции границ
2026-06-18
SCID: 54.1/ndgnng95
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Zernike-moment edge extractionmid-wave infrared vibrationmulti-scale Gaussian fittingspot-centroid localizationsubpixel edge reconstruction
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Abstract (AI)
Accurate spot-centroid localization is fundamental for determining optical metrics such as modulation transfer function (MTF) and effective focal length (EFL). Conventional methods struggle under non-ideal conditions—asymmetric spots, high noise, and vibration—and mid-wave infrared (MWIR) vibration has received little attention. To address these gaps, we propose multi-scale Gaussian fitting with subpixel edge reconstruction (MSGF-SER), combining image pyramid fitting, Zernike-moment edge extraction, and adaptive eccentricity-weighted fusion. Validated on simulated spots with varying SNRs and experimental sequences (visible off-axis aberration, long-wave infrared (LWIR) high-noise, MWIR micro-vibration), MSGF-SER achieved a noise-free RMSE of 0.03 pixel and 0.84 pixel at 5 dB SNR. On real MWIR vibration sequences, the Y-direction standard deviation (STD) dropped to 0.098 pixel, and the trajectory displacement variance was more than an order of magnitude lower than that of conventional methods. MTF deviations remained within 0.01, and the deviation of the measured mean EFL from the nominal focal length was better than 0.05 mm, and the STD was below 0.02 mm. These results demonstrate that MSGF-SER substantially improves centroid localization accuracy, repeatability, and smoothness under challenging conditions, providing reliable support for high-precision optical system parameter measurement.
Key Findings
1
MSGF-SER achieved centroid-localization RMSEs of 0.03 pixel without noise and 0.84 pixel at 5 dB SNR in simulated spot experiments.
2
On real MWIR vibration sequences, MSGF-SER reduced Y-direction centroid standard deviation to 0.098 pixel and lowered trajectory displacement variance by more than an order of magnitude versus conventional methods.
3
The MSGF-SER method combines multi-scale Gaussian fitting, Zernike-moment subpixel edge extraction, and adaptive eccentricity-weighted fusion for robust spot-centroid localization.
4
The method improved centroid accuracy, repeatability, and trajectory smoothness under asymmetric spots, high noise, and vibration across visible, LWIR, and MWIR experimental conditions.
5
Using MSGF-SER, MTF deviations remained within 0.01, while mean EFL deviation from the nominal focal length stayed below 0.05 mm and EFL standard deviation below 0.02 mm.
Research Object
Optical spot images and their centroids under non-ideal imaging conditions, including asymmetric spots, noise, and vibration across visible, LWIR, and MWIR sequences
Research Subject
Accuracy, repeatability, smoothness, and robustness of spot-centroid localization for high-precision MTF and EFL measurement
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2026-06-18
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