Expert recommendations on data collection and annotation of two dimensional ultrasound images in azoospermic males for evaluation of testicular spermatogenic function in intelligent medicine

IF 4.4 Q1 COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS
Wanling Huang , Yifan Xiang , Yahan Yang , Qing Tang , Guangjian Liu , Hong Yang , Erjiao Xu , Huitong Lin , Zhixing Zhang , Zhe Ma , Zhendong Li , Ruiyang Li , Anqi Yan , Haotian Lin , Zhu Wang , Chinese Association of Artificial Intelligence, Medical Artificial Intelligence Branch of the Guangdong Medical Association
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引用次数: 0

Abstract

Testicular two-dimensional ultrasound is a testing modality that is often used to evaluate azoospermia and other related diseases. With the continuous development of deep learning in recent years, the combination of deep learning and testicular ultrasound appears unstoppable despite a lack of relevant standards. One of the major problems associated with the digitization of ultrasound images is the uneven quality of data however, and a standardized data source and acquisition process has not yet been developed. Such a standard could fill the current gap, and establish acquisition criteria for ultrasound images of testes during the male reproductive period, including grayscale ultrasound, shear wave elastography, and contrast-enhanced ultrasound. By following these guidelines the quality of testicular ultrasound images would be improved and standardized, which would lay a solid foundation for the standardization of testicular ultrasound images, and assist automated evaluation of testicular spermatogenic function of whole testis in azoospermic males.

专家建议无精子男性二维超声图像的数据收集和注释,用于智能医学中睾丸生精功能的评估
睾丸二维超声是一种检测方式,常用于评估无精子症和其他相关疾病。随着近年来深度学习的不断发展,尽管缺乏相关标准,但深度学习与睾丸超声的结合似乎势不可挡。然而,与超声图像数字化相关的主要问题之一是数据质量参差不齐,并且尚未开发标准化的数据源和采集过程。该标准可以填补目前的空白,建立男性生殖期睾丸超声图像的采集标准,包括灰度超声、横波弹性成像、对比增强超声。遵循本指南可提高和规范睾丸超声图像的质量,为睾丸超声图像的标准化奠定坚实的基础,有助于无精子男性全睾丸睾丸生精功能的自动化评价。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Intelligent medicine
Intelligent medicine Surgery, Radiology and Imaging, Artificial Intelligence, Biomedical Engineering
CiteScore
5.20
自引率
0.00%
发文量
19
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