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用于全场光学血管造影的多焦点图像融合

Multi-Focus Image Fusion for Full-Field Optical Angiography.

作者信息

Jie Yuchan, Li Xiaosong, Wang Mingyi, Tan Haishu

机构信息

Shien-Ming Wu School of Intelligent Engineering, South China University of Technology, Guangzhou 510640, China.

School of Physics and Optoelectronic Engineering, Foshan University, Foshan 528225, China.

出版信息

Entropy (Basel). 2023 Jun 16;25(6):951. doi: 10.3390/e25060951.

Abstract

Full-field optical angiography (FFOA) has considerable potential for clinical applications in the prevention and diagnosis of various diseases. However, owing to the limited depth of focus attainable using optical lenses, only information about blood flow in the plane within the depth of field can be acquired using existing FFOA imaging techniques, resulting in partially unclear images. To produce fully focused FFOA images, an FFOA image fusion method based on the nonsubsampled contourlet transform and contrast spatial frequency is proposed. Firstly, an imaging system is constructed, and the FFOA images are acquired by intensity-fluctuation modulation effect. Secondly, we decompose the source images into low-pass and bandpass images by performing nonsubsampled contourlet transform. A sparse representation-based rule is introduced to fuse the lowpass images to effectively retain the useful energy information. Meanwhile, a contrast spatial frequency rule is proposed to fuse bandpass images, which considers the neighborhood correlation and gradient relationships of pixels. Finally, the fully focused image is produced by reconstruction. The proposed method significantly expands the range of focus of optical angiography and can be effectively extended to public multi-focused datasets. Experimental results confirm that the proposed method outperformed some state-of-the-art methods in both qualitative and quantitative evaluations.

摘要

全视野光学血管造影(FFOA)在多种疾病的预防和诊断临床应用中具有巨大潜力。然而,由于使用光学透镜可达到的焦深有限,使用现有的FFOA成像技术只能获取景深范围内平面内的血流信息,导致图像部分不清晰。为了生成全聚焦的FFOA图像,提出了一种基于非下采样轮廓波变换和对比度空间频率的FFOA图像融合方法。首先,构建成像系统,并通过强度波动调制效应获取FFOA图像。其次,通过执行非下采样轮廓波变换将源图像分解为低通和带通图像。引入基于稀疏表示的规则来融合低通图像,以有效保留有用的能量信息。同时,提出对比度空间频率规则来融合带通图像,该规则考虑了像素的邻域相关性和梯度关系。最后,通过重建生成全聚焦图像。所提出的方法显著扩展了光学血管造影的聚焦范围,并可有效地扩展到公共多聚焦数据集。实验结果证实,该方法在定性和定量评估中均优于一些现有先进方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ed11/10296795/82123ea1c15a/entropy-25-00951-g001.jpg

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