Weakly Supervised Cross-platform Teenager Detection with Adversarial BERT

Peiling Yi, A. Zubiaga
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Abstract

Teenager detection is an important case of the age detection task in social media, which aims to detect teenage users to protect them from negative influences. The teenager detection task suffers from the scarcity of labelled data, which exacerbates the ability to perform well across social media platforms. To further research in teenager detection in settings where no labelled data is available for a platform, we propose a novel cross-platform framework based on Adversarial BERT. Our framework can operate with a limited amount of labelled instances from the source platform and with no labelled data from the target platform, transferring knowledge from the source to the target social media. We experiment on four publicly available datasets, obtaining results demonstrating that our framework can significantly improve over competitive baseline modelson the cross-platform teenager detection task.
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基于对抗BERT的弱监督跨平台青少年检测
青少年检测是社交媒体中年龄检测任务的一个重要案例,其目的是检测青少年用户,保护他们免受负面影响。青少年检测任务受到标签数据稀缺的影响,这加剧了在社交媒体平台上表现良好的能力。为了进一步研究在没有标记数据可用于平台的情况下的青少年检测,我们提出了一个基于对抗性BERT的新型跨平台框架。我们的框架可以使用来自源平台的有限数量的标记实例,而没有来自目标平台的标记数据,将知识从源转移到目标社交媒体。我们在四个公开可用的数据集上进行了实验,得到的结果表明,我们的框架在跨平台青少年检测任务上比竞争基准模型有显著改善。
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