测试文体干预以减少内容审核工作者的情绪影响

S. Karunakaran, Rashmi Ramakrishan
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引用次数: 12

摘要

随着用户生成内容的增加,对内容评论的需求也越来越大。虽然机器和技术在内容审核中发挥着关键作用,但对人工审核的需求仍然存在。众所周知,这种人工审查可能会在情感上具有挑战性。我们测试了简单的干预措施的效果,比如灰度化和模糊化,以减少这类评论对情感的影响。我们通过在实时内容审查设置中引入干预措施来证明这一点,从而使我们能够最大化外部有效性。我们采用前测后测实验设计,并使用PANAS量表测量评审质量、平均处理时间和情绪影响。我们发现简单的灰度转换可以提供一个易于实现和使用的解决方案,可以显著改变内容评论的情感影响。然而,我们观察到,一个完全模糊的干预可能是具有挑战性的评论者。
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Testing Stylistic Interventions to Reduce Emotional Impact of Content Moderation Workers
With the rise in user generated content, there is a greater need for content reviews. While machines and technology play a critical role in content moderation, the need for manual reviews still remains. It is known that such manual reviews could be emotionally challenging. We test the effects of simple interventions like grayscaling and blurring to reduce the emotional impact of such reviews. We demonstrate this by bringing in interventions in a live content review setup thus allowing us to maximize external validity. We use a pre-test post-test experiment design and measure review quality, average handling time and emotional affect using the PANAS scale. We find that simple grayscale transformations can provide an easy to implement and use solution that can significantly change the emotional impact of content reviews. We observe, however, that a full blur intervention can be challenging to reviewers.
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