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NDER&58; A novel web application using annotated whole slide images for rapid improvements in human pattern recognition

机译:NDER&58;一种新颖的Web应用程序,使用带批注的整个幻灯片图像快速改善人类模式识别

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Context&58; Whole-slide images (WSIs) present a rich source of information for education, training, and quality assurance. However, they are often used in a fashion similar to glass slides rather than in novel ways that leverage the advantages of WSI. We have created a pipeline to transform annotated WSI into pattern recognition training, and quality assurance web application called novel diagnostic electronic resource (NDER). Aims&58; Create an efficient workflow for extracting annotated WSI for use by NDER, an attractive web application that provides high-throughput training. Materials and Methods&58; WSI were annotated by a resident and classified into five categories. Two methods of extracting images and creating image databases were compared. Extraction Method 1&58; Manual extraction of still images and validation of each image by four breast pathologists. Extraction Method 2&58; Validation of annotated regions on the WSI by a single experienced breast pathologist and automated extraction of still images tagged by diagnosis. The extracted still images were used by NDER. NDER briefly displays an image, requires users to classify the image after time has expired, then gives users immediate feedback. Results&58; The NDER workflow is efficient&58; annotation of a WSI requires 5 min and validation by an expert pathologist requires An additional one to 2 min. The pipeline is highly automated, with only annotation and validation requiring human input. NDER effectively displays hundreds of high-quality, high-resolution images and provides immediate feedback to users during a 30 min session. Conclusions&58; NDER efficiently uses annotated WSI to rapidly increase pattern recognition and evaluate for diagnostic proficiency.
机译:上下文&58;全幻灯片图像(WSI)为教育,培训和质量保证提供了丰富的信息来源。但是,它们通常以类似于幻灯片的方式使用,而不是以新颖的方式利用WSI的优势。我们创建了一个管道,将带注释的WSI转换为模式识别培训,以及称为新型诊断电子资源(NDER)的质量保证Web应用程序。目标&58;创建一个有效的工作流来提取带注释的WSI,以供NDER使用,它是一种有吸引力的Web应用程序,可提供高吞吐量的培训。材料与方法&58; WSI由居民注释,分为五类。比较了提取图像和创建图像数据库的两种方法。提取方法1&58;手动提取静止图像并由四位乳腺病理学家对每个图像进行验证。提取方法2&58;由一位经验丰富的乳房病理学家对WSI上的注释区域进行验证,并自动提取通过诊断标记的静止图像。提取的静止图像由NDER使用。 NDER会短暂显示图像,要求用户在时间到期后对图像进行分类,然后立即向用户提供反馈。结果&58; NDER工作流程高效&58;对WSI的注释需要5分钟,而由专业病理学家进行的验证需要另外1至2分钟。管道是高度自动化的,仅需人工输入即可进行注释和验证。 NDER有效显示数百张高质量,高分辨率的图像,并在30分钟的会话中向用户提供即时反馈。结论&58; NDER有效地使用带注释的WSI来快速提高模式识别能力并评估诊断能力。

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