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Diagnosis of Depressive Disorder Model on Facial Expression Based on Fast R-CNN
by
Park, Won-Hyung
, Lee, Young-Shin
in
Anxiety
/ Artificial intelligence
/ Cameras
/ Cognition & reasoning
/ Coronaviruses
/ COVID-19
/ Deep learning
/ depressive disorder
/ diagnosis
/ Digital technology
/ Emotions
/ facial expression
/ fast R-CNN
/ Intervention
/ Machine learning
/ Mental depression
/ Mental disorders
/ Mental health care
/ Questionnaires
/ Schizophrenia
/ Smartphones
/ Wearable computers
2022
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Diagnosis of Depressive Disorder Model on Facial Expression Based on Fast R-CNN
by
Park, Won-Hyung
, Lee, Young-Shin
in
Anxiety
/ Artificial intelligence
/ Cameras
/ Cognition & reasoning
/ Coronaviruses
/ COVID-19
/ Deep learning
/ depressive disorder
/ diagnosis
/ Digital technology
/ Emotions
/ facial expression
/ fast R-CNN
/ Intervention
/ Machine learning
/ Mental depression
/ Mental disorders
/ Mental health care
/ Questionnaires
/ Schizophrenia
/ Smartphones
/ Wearable computers
2022
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Do you wish to request the book?
Diagnosis of Depressive Disorder Model on Facial Expression Based on Fast R-CNN
by
Park, Won-Hyung
, Lee, Young-Shin
in
Anxiety
/ Artificial intelligence
/ Cameras
/ Cognition & reasoning
/ Coronaviruses
/ COVID-19
/ Deep learning
/ depressive disorder
/ diagnosis
/ Digital technology
/ Emotions
/ facial expression
/ fast R-CNN
/ Intervention
/ Machine learning
/ Mental depression
/ Mental disorders
/ Mental health care
/ Questionnaires
/ Schizophrenia
/ Smartphones
/ Wearable computers
2022
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Diagnosis of Depressive Disorder Model on Facial Expression Based on Fast R-CNN
Journal Article
Diagnosis of Depressive Disorder Model on Facial Expression Based on Fast R-CNN
2022
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Overview
This study examines related literature to propose a model based on artificial intelligence (AI), that can assist in the diagnosis of depressive disorder. Depressive disorder can be diagnosed through a self-report questionnaire, but it is necessary to check the mood and confirm the consistency of subjective and objective descriptions. Smartphone-based assistance in diagnosing depressive disorders can quickly lead to their identification and provide data for intervention provision. Through fast region-based convolutional neural networks (R-CNN), a deep learning method that recognizes vector-based information, a model to assist in the diagnosis of depressive disorder can be devised by checking the position change of the eyes and lips, and guessing emotions based on accumulated photos of the participants who will repeatedly participate in the diagnosis of depressive disorder.
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