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COMPUTER-IMPLEMENTED MACHINE LEARNING FOR DETECTION AND STATISTICAL ANALYSIS OF ERRORS BY HEALTHCARE PROVIDERS

机译:配备计算机的机器学习器,用于由卫生保健提供者检测和统计错误

摘要

For training data pairs comprising training text (a radiological report) and training images (radiological images associated with the radiological report), a first encoder network determines word embeddings for the training text. A concept is generated from the operation of layers of the first encoder network, which is regularized by a first loss between the generated concept and a labeled concept for the training text. A second encoder network determines features for the training image. A heatmap is generated from the operation of layers of the second encoder network, which is regularized by a second loss between the generated heatmap and a labeled heatmap for the training image. A categorical cross entropy loss is calculated between a diagnostic quality category (classified by an error encoder) and a labeled diagnostic quality category for the training data pair. A total loss function comprising the first, second, and categorical cross entropy losses is minimized.
机译:对于包括训练文本(放射线报告)和训练图像(与放射线报告相关联的放射线图像)的训练数据对,第一编码器网络确定用于训练文本的词嵌入。从第一编码器网络的各层的操作中产生概念,该概念通过所产生的概念与训练文本的标记概念之间的第一损失而被正规化。第二编码器网络确定训练图像的特征。从第二编码器网络的各层的操作中生成热图,该热图通过所生成的热图和训练图像的标记热图之间的第二次损失来进行规则化。在训练数据对的诊断质量类别(由错误编码器分类)和标记的诊断质量类别之间计算出分类交叉熵损失。包括第一,第二和分类交叉熵损失的总损失函数被最小化。

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