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Use of Medical Subject Headings (MeSH) in Portuguese for categorizing web-based healthcare content.

机译:葡萄牙语中医疗主题标题(MeSH)的使用,用于对基于Web的医疗保健内容进行分类。

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INTRODUCTION: Internet users are increasingly using the worldwide web to search for information relating to their health. This situation makes it necessary to create specialized tools capable of supporting users in their searches. OBJECTIVE: To apply and compare strategies that were developed to investigate the use of the Portuguese version of Medical Subject Headings (MeSH) for constructing an automated classifier for Brazilian Portuguese-language web-based content within or outside of the field of healthcare, focusing on the lay public. METHODS: 3658 Brazilian web pages were used to train the classifier and 606 Brazilian web pages were used to validate it. The strategies proposed were constructed using content-based vector methods for text classification, such that Naive Bayes was used for the task of classifying vector patterns with characteristics obtained through the proposed strategies. RESULTS: A strategy named InDeCS was developed specifically to adapt MeSH for the problem that was put forward. This approach achieved better accuracy for this pattern classification task (0.94 sensitivity, specificity and area under the ROC curve). CONCLUSIONS: Because of the significant results achieved by InDeCS, this tool has been successfully applied to the Brazilian healthcare search portal known as Busca Saude. Furthermore, it could be shown that MeSH presents important results when used for the task of classifying web-based content focusing on the lay public. It was also possible to show from this study that MeSH was able to map out mutable non-deterministic characteristics of the web.
机译:简介:互联网用户越来越多地使用万维网搜索与他们的健康有关的信息。这种情况下,有必要创建能够支持用户搜索的专用工具。目的:应用和比较为研究葡萄牙语版本的医学主题词(MeSH)的使用而开发的策略,以构建针对医疗领域内外的巴西葡萄牙语网络内容的自动分类器,重点是外行。方法:使用3658个巴西网页训练分类器,并使用606个巴西网页进行验证。所提出的策略是使用基于内容的向量方法构造的,用于文本分类,因此朴素贝叶斯被用于对具有通过所提出的策略获得的特征的向量模式进行分类的任务。结果:专门开发了一种名为InDeCS的策略,以使MeSH适应提出的问题。对于该模式分类任务,此方法获得了更高的准确性(0.94灵敏度,特异性和ROC曲线下的面积)。结论:由于InDeCS取得了显著成果,该工具已成功应用于巴西医疗保健搜索门户网站Busca Saude。此外,可以证明,MeSH在用于针对非专业人群的基于Web的内容分类任务时显示出重要的结果。从这项研究中也有可能表明,MeSH能够绘制出可变的网络不确定性特征。

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