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眼底图像中视网膜母细胞瘤的半监督分割。

Semi-supervised segmentation of retinoblastoma tumors in fundus images.

机构信息

Chashmyar Company, Tehran, Iran.

Eye Research Center, The Five Senses Institute, Rassoul Akram Hospital, Iran University of Medical Sciences, Tehran, Iran.

出版信息

Sci Rep. 2023 Aug 10;13(1):13010. doi: 10.1038/s41598-023-39909-6.

Abstract

Retinoblastoma is a rare form of cancer that predominantly affects young children as the primary intraocular malignancy. Studies conducted in developed and some developing countries have revealed that early detection can successfully cure over 90% of children with retinoblastoma. An unusual white reflection in the pupil is the most common presenting symptom. Depending on the tumor size, shape, and location, medical experts may opt for different approaches and treatments, with the results varying significantly due to the high reliance on prior knowledge and experience. This study aims to present a model based on semi-supervised machine learning that will yield segmentation results comparable to those achieved by medical experts. First, the Gaussian mixture model is utilized to detect abnormalities in approximately 4200 fundus images. Due to the high computational cost of this process, the results of this approach are then used to train a cost-effective model for the same purpose. The proposed model demonstrated promising results in extracting highly detailed boundaries in fundus images. Using the Sørensen-Dice coefficient as the comparison metric for segmentation tasks, an average accuracy of 93% on evaluation data was achieved.

摘要

视网膜母细胞瘤是一种罕见的癌症,主要影响儿童,是原发性眼内恶性肿瘤。在发达国家和一些发展中国家进行的研究表明,早期发现可以成功治愈 90%以上的视网膜母细胞瘤患儿。瞳孔出现异常的白色反光是最常见的症状。根据肿瘤的大小、形状和位置,医学专家可能会选择不同的方法和治疗方案,但由于高度依赖先验知识和经验,结果会有很大差异。本研究旨在提出一种基于半监督机器学习的模型,该模型的分割结果可与医学专家相媲美。首先,利用高斯混合模型检测大约 4200 张眼底图像中的异常情况。由于该过程计算成本较高,因此该方法的结果随后用于为相同目的训练一个具有成本效益的模型。所提出的模型在提取眼底图像的高度详细边界方面取得了有希望的结果。使用 Sørensen-Dice 系数作为分割任务的比较指标,在评估数据上的平均准确率达到了 93%。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d765/10415254/0df6162196a8/41598_2023_39909_Fig1_HTML.jpg

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