IEEE Transactions on Multimedia · 2020 · 87 citations · 63 references
Social Data AnalysisEngineeringCommunicationLanguage ProcessingPsychologyText MiningSocial SciencesComputational Social ScienceSocial MediaData ScienceData ResourcesAffective ComputingSocial Aspects Of Data MiningContent AnalysisSocial Network AnalysisSocial Medium MiningKnowledge DiscoveryDeep Neural NetworksSocial ComputingSuicideSuicidal Ideation DetectionSocial Medium DataSuicide Prevention
A large number of individuals are suffering from suicidal ideation in the world. There are a number of causes behind why an individual might suffer from suicidal ideation. As the most popular platform for self-expression, emotion release, and personal interaction, individuals may exhibit a number of symptoms of suicidal ideation on social media. Nevertheless, challenges from both data and knowledge aspects remain as obstacles, constraining the social media-based detection performance. Data implicitness and sparsity make it difficult to discover the inner true intentions of individuals based on their posts. Inspired by psychological studies, we build and unify a high-level suicide-oriented knowledge graph with deep neural networks for suicidal ideation detection on social media. We further design a two-layered attention mechanism to explicitly reason and establish key risk factors to individual's suicidal ideation. The performance study on microblog and Reddit shows that: 1) with the constructed personal knowledge graph, the social media-based suicidal ideation detection can achieve over 93% accuracy; and 2) among the six categories of personal factors, <i>post, personality,</i> and <i>experience</i> are the top-3 key indicators. Under these categories, <i>posted text</i>, <i>stress level</i>, <i>stress duration</i>, <i>posted image</i>, and <i>ruminant thinking</i> contribute to one's suicidal ideation detection.
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Deep Residual Learning for Image Recognition
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