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在体多光谱结肠内窥镜检查术在小鼠中应用。

In vivo multi spectral colonoscopy in mice.

机构信息

Institute of Photonic Technologies (LPT), Friedrich-Alexander-Universität Erlangen-Nürnberg (FAU), Konrad-Zuse-Straße 3/5, 91052, Erlangen, Germany.

Erlangen Graduate School in Advanced Optical Technologies (SAOT), Paul-Gordon-Straße 6, 91052, Erlangen, Germany.

出版信息

Sci Rep. 2022 May 24;12(1):8753. doi: 10.1038/s41598-022-12794-1.

Abstract

Multi- and hyperspectral endoscopy are possibilities to improve the endoscopic detection of neoplastic lesions in the colon and rectum during colonoscopy. However, most studies in this context are performed on histological samples/biopsies or ex vivo. This leads to the question if previous results can be transferred to an in vivo setting. Therefore, the current study evaluated the usefulness of multispectral endoscopy in identifying neoplastic lesions in the colon. The data set consists of 25 mice with colonic neoplastic lesions and the data analysis is performed by machine learning. Another question addressed was whether adding additional spatial features based on Gauss-Laguerre polynomials leads to an improved detection rate. As a result, detection of neoplastic lesions was achieved with an MCC of 0.47. Therefore, the classification accuracy of multispectral colonoscopy is comparable with hyperspectral colonoscopy in the same spectral range when additional spatial features are used. Moreover, this paper strongly supports the current path towards the application of multi/hyperspectral endoscopy in clinical settings and shows that the challenges from transferring results from ex vivo to in vivo endoscopy can be solved.

摘要

多光谱和高光谱内窥镜检查是提高结肠镜检查中结肠和直肠肿瘤性病变的内镜检测的可能性。然而,大多数此类研究都是基于组织学样本/活检或离体进行的。这就提出了一个问题,即之前的结果是否可以转移到体内环境中。因此,本研究评估了多光谱内窥镜检查在识别结肠肿瘤性病变中的作用。该数据集包含 25 只患有结肠肿瘤性病变的小鼠,数据分析采用机器学习方法进行。另一个问题是,是否基于高斯-拉盖尔多项式添加额外的空间特征可以提高检测率。结果,通过 MCC 为 0.47 实现了对肿瘤性病变的检测。因此,当使用额外的空间特征时,多光谱结肠镜检查的分类准确性可与相同光谱范围内的高光谱结肠镜检查相媲美。此外,本文强烈支持当前将多/高光谱内窥镜检查应用于临床环境的途径,并表明可以解决从离体到体内内窥镜检查结果转移的挑战。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d86a/9130268/6049bed73780/41598_2022_12794_Fig1_HTML.jpg

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