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Bot Detection: Will Focusing on Recall Cause Overall Performance Deterioration?

机译:机器人检测:专注于召回导致整体性能恶化?

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Social bots are an effective tool in the arsenal of malicious actors who manipulate discussions on social media. Bots help spread misinformation, promote political propaganda, and inflate the popularity of users and content. Hence, it is necessary to differentiate bot accounts and human users. There are several bot detection methods that approach this problem. Conventional methods either focus on precision regardless of the overall performance or optimize overall performance, say F_1, without monitoring its effect on precision or recall. Focusing on precision means that those users marked as bots are more likely than not bots but a large portion of the bots could remain undetected. From a user's perspective, however, it is more desirable to have less interaction with bots, even if it would incur a loss in precision. This can be achieved by a detection method with higher recall. A trivial, but useless, solution for high recall is to classify every account (human or bot) as bot, hence, resulting in poor overall performance. In this work, we investigate if it is feasible for a method to focus on recall without considerable loss in overall performance. Extensive experiments with recall and precision trade-off suggest that high recall can be achieved without much overall performance deterioration. This research leads to a recall-focused approach to bot detection, REFOCUS, with some lessons learned and future directions.
机译:社交机器人是操纵社交媒体讨论的恶意行为者的阿森纳的有效工具。机器人有助于传播错误信息,促进政治宣传,并夸大用户和内容的普及。因此,有必要区分机器人账户和人类用户。有几种接受此问题的机器人检测方法。传统方法无论是整体性能还是优化整体性能如何,都要缩影精度,例如F_1,而不监控其对精度或召回的影响。专注于精确性意味着那些标记为机器人的用户比没有机器人更可能,但大部分机器人可以保持未被发现。然而,从用户的角度来看,即使它会引起精度损失,更希望具有较少的与机器人的相互作用。这可以通过具有更高召回的检测方法来实现。一个微不足道的,但无用的,高召回的解决方案是将每个账户(人或机器人)分类为机器人,因此,导致整体性能差。在这项工作中,我们调查了一种在没有整体性能方面没有相当大的损失的情况下专注于召回的方法是否可行。随着召回和精确权衡的广泛实验表明,在没有大量的整体性能恶化的情况下可以实现高召回。该研究导致召回的机器人检测方法,重新分析,有一些经验教训和未来的方向。

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