2020
DOI: 10.1186/s12938-020-00798-9
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Computer-aided therapeutic diagnosis for anorexia

Abstract: Background: Anorexia nervosa is a clinical disorder syndrome of the wide spectrum without a fully recognized etiology. The necessary issue in the clinical diagnostic process is to detect the causes of this disease (e.g., my body image, food, family, peers), which the therapist gradually comes to by verifying assumptions using proper methods and tools for diagnostic process. When a person is diagnosed with anorexia, a clinician (a doctor, a therapist or a psychologist) proposes a therapeutic diagnosis and consi… Show more

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Cited by 11 publications
(6 citation statements)
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References 43 publications
(47 reference statements)
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“…Moreover, Bag of Words (BoW) and various types of Word Embeddings, including GloVe ( 35 , 48 ), FastText ( 35 ), and Word2Vec ( 35 , 36 ), were widely employed as feature extraction techniques in these studies.…”
Section: Resultsmentioning
confidence: 99%
“…Moreover, Bag of Words (BoW) and various types of Word Embeddings, including GloVe ( 35 , 48 ), FastText ( 35 ), and Word2Vec ( 35 , 36 ), were widely employed as feature extraction techniques in these studies.…”
Section: Resultsmentioning
confidence: 99%
“…The authors of papers [21][22][23][24] used systems in their research based on various classifiers and methods for feature extraction. The recurrent neural network (RNN) classifier is often used to classify basic emotions.…”
Section: Review Of the Literaturementioning
confidence: 99%
“…Despite this general definition, however, most research and algorithms developed in the field of natural language processing focus on polarity detection, which aims to represent the emotional content of linguistic entities as scores on a scale from strongly negative to strongly positive (40)(41)(42)(43)(44)(45)(46)(47)(48)(49)(50). Now a fundamental tool of computational text analysis, polarity detection (henceforth polarity) has notably been used in psychology for analyzing sentiment in dreams (51), detecting mental disorders in Tweets (52), diagnosing anorexia nervosa (53,54), and assessing the wellbeing of Tweeters during the pandemic (55).…”
Section: Sentiment Analysismentioning
confidence: 99%