OTITIS MEDIA VOCABULARY AND GRAMMAR.

Anupama Kuruvilla, Jian Li, Pablo Hennings Yeomans, Pedro Quelhas, Nader Shaikh, Alejandro Hoberman, Jelena Kovačević
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引用次数: 10

Abstract

We propose an automated algorithm for classifying diagnostic categories of otitis media (middle ear inflammation); acute otitis media, otitis media with effusion and no effusion. Acute otitis media represents a bacterial superinfection of the middle ear fluid and otitis media with effusion a sterile effusion that tends to subside spontaneously. Diagnosing children with acute otitis media is hard, leading to overprescription of antibiotics that are beneficial only for children with acute otitis media, prompting a need for an accurate and automated algorithm. To that end, we design a feature set understood by both otoscopists and engineers based on the actual visual cues used by otoscopists; we term this otitis media vocabulary. We also design a process to combine the vocabulary terms based on the decision process used by otoscopists; we term this otitis media grammar. The algorithm achieves 84% classification accuracy, in the range or outperforming clinicians who did not receive special training, as well as state-of-the-art classifiers.

中耳炎的词汇和语法。
我们提出了一种自动分类中耳炎(中耳炎症)诊断类别的算法;急性中耳炎,有积液和无积液的中耳炎。急性中耳炎是中耳液和中耳炎的细菌重叠感染,中耳炎伴有积液,这种无菌积液往往会自发消退。诊断患有急性中耳炎的儿童是困难的,导致抗生素的过度处方,这些抗生素只对患有急性中耳炎的儿童有益,这促使人们需要一种准确和自动化的算法。为此,我们设计了一个耳科医生和工程师都能理解的特征集,该特征集基于耳科医生使用的实际视觉线索;我们称之为中耳炎词汇。我们还设计了一个基于耳科医生使用的决策过程来组合词汇的过程;我们称之为中耳炎语法。该算法达到了84%的分类准确率,在范围内或优于没有接受过特殊培训的临床医生,以及最先进的分类器。
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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