论文标题

分析与癌症相关推文中错误信息的程度

Analysing the Extent of Misinformation in Cancer Related Tweets

论文作者

Bal, Rakesh, Sinha, Sayan, Dutta, Swastika, Joshi, Rishabh, Ghosh, Sayan, Dutt, Ritam

论文摘要

Twitter已成为讨论各种主题的最受欢迎的地方之一,包括癌症等医学相关问题。这有助于传播对癌症的各种原因,治愈和预防方法的认识。但是,尚未进行适当的分析,该分析讨论了此类主张的有效性。在这项工作中,我们旨在解决此类平台中的错误信息传播。我们收集并提供了一个有关推文的数据集,这些推文专门讨论了癌症,并提出了一种基于注意力的深度学习模型,以自动检测错误信息及其传播。然后,我们对与错误信息和真理相对应的语言变化进行比较分析。该分析有助于我们收集有关与错误信息的推文相关的各种社会方面的相关见解。

Twitter has become one of the most sought after places to discuss a wide variety of topics, including medically relevant issues such as cancer. This helps spread awareness regarding the various causes, cures and prevention methods of cancer. However, no proper analysis has been performed, which discusses the validity of such claims. In this work, we aim to tackle the misinformation spread in such platforms. We collect and present a dataset regarding tweets which talk specifically about cancer and propose an attention-based deep learning model for automated detection of misinformation along with its spread. We then do a comparative analysis of the linguistic variation in the text corresponding to misinformation and truth. This analysis helps us gather relevant insights on various social aspects related to misinformed tweets.

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