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Mental Health Analysis Via Social Media Data

机译:通过社交媒体数据进行心理健康分析

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With ubiquity of social media platforms, millions of people are routinely sharing their moods, feelings and even their daily struggles with mental health issues by expressing it verbally or indirectly through images they post. In this study, we aim to examine exploitation of big multi-modal social media data for studying depressive behavior and its population trend across the U.S. to better understand a regions influence on the prevailing environment and available care. In partic-ular, employing statistical techniques along with the fusion of heterogeneous features gleaned from different modalities (shared images and textual content), we build models to detect depressed individuals and their demographics.
机译:在社交媒体平台无处不在的情况下,数百万人通过口头或间接地通过张贴的图像来表达自己的情绪,情感甚至日常与精神健康问题的斗争。在这项研究中,我们旨在检查大型多模式社交媒体数据的开发情况,以研究整个美国的抑郁行为及其人口趋势,以更好地了解某个地区对当前环境和现有护理的影响。在特定情况下,我们采用统计技术以及从不同方式(共享图像和文本内容)中收集的异类特征的融合,建立了模型来检测沮丧的个体及其人口统计学。

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