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Enhanced Word Embeddings for Anorexia Nervosa Detection on Social Media

机译:增强厌氧神经系统在社交媒体上检测的增强词嵌入

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Anorexia Nervosa (AN) is a serious mental disorder that has been proved to be traceable on social media through the analysis of users' written posts. Here we present an approach to generate word embeddings enhanced for a classification task dedicated to the detection of Reddit users with AN. Our method extends Word2vec's objective function in order to put closer domain-specific and semantically related words. The approach is evaluated through the calculation of an average similarity measure, and via the usage of the embeddings generated as features for the AN screening task. The results show that our method outperforms the usage of fine-tuned pre-learned word embeddings, related methods dedicated to generate domain adapted embeddings, as well as representations learned on the training set using Word2vec. This method can potentially be applied and evaluated on similar tasks that can be formalized as document categorization problems. Regarding our use case, we believe that this approach can contribute to the development of proper automated detection tools to alert and assist clinicians.
机译:Anorexia Nervosa(AN)是一种严重的精神障碍,已被证明通过对用户的书面职位进行分析来追溯到社交媒体上。在这里,我们提出了一种生成Word Embedings的方法,增强了专门用于检测Reddit用户的分类任务。我们的方法扩展了Word2VEC的目标函数,以便更接近域特定和语义相关的单词。通过计算平均相似度测量来评估该方法,并通过用作筛选任务的特征生成的嵌入物的使用。结果表明,我们的方法优于微调预先学习单词嵌入的使用,专用于生成域的相关方法,以及使用Word2Vec在训练集上学到的表示。可以应用此方法应用和评估可在类似的任务中以可形式化为文档分类问题。关于我们的用例,我们认为这种方法可以有助于开发适当的自动检测工具来警觉和协助临床医生。

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