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Using semantic analysis of texts for the identification of drugs with similar therapeutic effects

机译:使用文本的语义分析来鉴定具有类似治疗效果的药物

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Semantic analysis of text collections was used to identify drugs with similar therapeutic activity. Natural language processing methods were applied to analyse 2.5 mln texts from drug reviews (in English) found on patient forums and discussion boards. In order to obtain distributed word representations form the input data, a continuous bag-of-words type model was used. Such model is one of the word2vec models intended to analyse the natural language semantics. This allowed the assignment of a numeric vector to each drug name. A list of pairs of drugs with similar vectors was formed. An analysis of this list confirmed that similar word vectors correspond to either drugs with the same active compound or to drugs with close therapeutic effects that belong to the same therapeutic group. The chemical similarity in such drug pairs was found to be low. The suggested procedure was used to visualize the chemical drug space and in the search for compounds with potentially similar biological effects among drugs of different therapeutic groups.
机译:文本收集的语义分析用于鉴定具有类似治疗活动的药物。应用自然语言处理方法分析&来自患者论坛和讨论委员会的药物评价中的2.5mLn文本(英文)。为了获得分布式单词表示,使用输入数据,使用连续的单词型型号。这种模型是旨在分析自然语言语义的Word2Vec模型之一。这允许将数字矢量分配给每个药物名称。形成了具有类似载体的一对药物。对该清单的分析证实,类似的词汇载体对应于具有相同活性化合物的药物或药物,其具有与同一治疗组的密切治疗效果的药物。发现这种药物对中的化学相似性是低的。建议的程序用于可视化化学药物空间,并在不同治疗组的药物中寻找具有潜在类似生物效应的化合物。

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