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张量正则化全变差用于脑瘤三次谐波成像的去噪。

Tensor regularized total variation for denoising of third harmonic generation images of brain tumors.

机构信息

LaserLab Amsterdam, Department of Physics, Faculty of Sciences, VU University, Amsterdam, The Netherlands.

Department of Radiology and Nuclear Medicine, VU University Medical Center, Amsterdam, The Netherlands.

出版信息

J Biophotonics. 2019 Jan;12(1):e201800129. doi: 10.1002/jbio.201800129. Epub 2018 Aug 16.

Abstract

Third harmonic generation (THG) microscopy shows great potential for instant pathology of brain tissue during surgery. However, the rich morphologies contained and the noise associated makes image restoration, necessary for quantification of the THG images, challenging. Anisotropic diffusion filtering (ADF) has been recently applied to restore THG images of normal brain, but ADF is hard-to-code, time-consuming and only reconstructs salient edges. This work overcomes these drawbacks by expressing ADF as a tensor regularized total variation model, which uses the Huber penalty and the L norm for tensor regularization and fidelity measurement, respectively. The diffusion tensor is constructed from the structure tensor of ADF yet the tensor decomposition is performed only in the non-flat areas. The resulting model is solved by an efficient and easy-to-code primal-dual algorithm. Tests on THG brain tumor images show that the proposed model has comparable denoising performance as ADF while it much better restores weak edges and it is up to 60% more time efficient.

摘要

三次谐波产生(THG)显微镜在手术过程中即时显示脑组织病理学方面具有巨大潜力。然而,丰富的形态和相关噪声使得图像恢复成为必要,以便对 THG 图像进行定量分析。各向异性扩散滤波(ADF)最近已被应用于恢复正常脑组织的 THG 图像,但 ADF 难以编写、耗时且仅重建显著边缘。通过将 ADF 表示为张量正则化全变分模型,本工作克服了这些缺点,该模型分别使用 Huber 罚函数和 L 范数进行张量正则化和保真度测量。扩散张量是从 ADF 的结构张量构建的,但张量分解仅在非平坦区域进行。通过一种高效且易于编写的主对偶算法来求解所得模型。对 THG 脑肿瘤图像的测试表明,所提出的模型在具有与 ADF 相当的去噪性能的同时,还能更好地恢复弱边缘,效率提高了 60%。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1465/7065612/68b8159d71e5/JBIO-12-e201800129-g001.jpg

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