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COMPUTER-IMPLEMENTED NATURAL LANGUAGE UNDERSTANDING OF MEDICAL REPORTS

机译:医学报告对计算机的自然语言理解

摘要

A natural language understanding method begins with a radiological report text containing clinical findings. Errors in the text are corrected by analyzing character- level optical transformation costs weighted by a frequency analysis over a corpus corresponding to the report text. For each word within the report text, a word embedding is obtained, character-level embeddings are determined, and the word and character-level embeddings are concatenated to a neural network which generates a plurality of NER tagged spans for the report text. A set of linked relationships are calculated for the NER tagged spans by generating masked text sequences based on the report text and determined pairs of potentially linked NER spans. A dense adjacency matrix is calculated based on attention weights obtained from providing the one or more masked text sequences to a Transformer deep learning network, and graph convolutions are then performed over the calculated dense adjacency matrix.
机译:自然语言理解方法始于包含临床发现的放射学报告文本。通过分析字符级光学转换成本来校正文本中的错误,该字符级光学转换成本是通过对与报告文本对应的语料库进行频率分析而加权的。对于报告文本中的每个单词,获取单词嵌入,确定字符级嵌入,并将单词和字符级嵌入连接到神经网络,该神经网络为报告文本生成多个带有NER标签的跨度。通过基于报告文本和确定的潜在链接的NER跨度对生成掩码文本序列,可以为NER标记的跨度计算出一组链接关系。根据通过将一个或多个蒙版文本序列提供给Transformer深度学习网络而获得的注意力权重,计算密集邻接矩阵,然后对计算出的密集邻接矩阵执行图卷积。

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