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Real-time blind deconvolution of retinal images in adaptive optics scanning laser ophthalmoscopy

机译:自适应光学扫描激光眼底镜对视网膜图像进行实时盲去卷积

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摘要

With the use of adaptive optics (AO), the ocular aberrations can be compensated to get high-resolution image of living human retina. However, the wavefront correction is not perfect due to the wavefront measure error and hardware restrictions. Thus, it is necessary to use a deconvolution algorithm to recover the retinal images. In this paper, a blind deconvolution technique called Incremental Wiener filter is used to restore the adaptive optics confocal scanning laser ophthalmoscope (AOSLO) images. The point-spread function (PSF) measured by wavefront sensor is only used as an initial value of our algorithm. We also realize the Incremental Wiener filter on graphics processing unit (GPU) in real-time. When the image size is 512 X 480 pixels, six iterations of our algorithm only spend about 10 ms. Retinal blood vessels as well as cells in retinal images are restored by our algorithm, and the PSFs are also revised. Retinal images with and without adaptive optics are both restored. The results show that Incremental Wiener filter reduces the noises and improve the image quality.
机译:通过使用自适应光学(AO),可以补偿眼像差,以获得高分辨率的人类视网膜图像。但是,由于波前测量误差和硬件限制,波前校正并不完美。因此,有必要使用反卷积算法来恢复视网膜图像。在本文中,称为增量维纳滤波器的盲反卷积技术用于恢复自适应光学共焦扫描激光检眼镜(AOSLO)图像。波前传感器测量的点扩展函数(PSF)仅用作我们算法的初始值。我们还可以在图形处理单元(GPU)上实时实现增量维纳滤波器。当图像大小为512 X 480像素时,我们算法的六次迭代仅花费大约10毫秒。通过我们的算法可以恢复视网膜血管以及视网膜图像中的细胞,并且还可以修改PSF。具有和不具有自适应光学器件的视网膜图像都被恢复。结果表明,增量维纳滤波器可以减少噪声并提高图像质量。

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