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Controlling Human Perception of Basic User Traits

机译:控制人类对基本用户特征的看法

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Much of our online communication is text-mediated and, lately, more common with automated agents. Unlike interacting with humans, these agents currently do not tailor their language to the type of person they are communicating to In this pilot study, we measure the extent to which human perception of basic user trait information - gender and age - is controllable through text. Using automatic models of gender and age prediction, we estimate which tweets posted by a user are more likely to mis-characterize his traits We perform multiple controlled crowdsourc-ing experiments in which we show that we can reduce the human prediction accuracy of gender to almost random - an over 20% drop in accuracy. Our experiments show that it is practically feasible for multiple applications such as text generation, text summarization or machine translation to be tailored to specific traits and perceived as such.
机译:我们的大部分在线沟通都是文本介导的,最近,更常见的是自动化代理商。与人类的互动不同,这些代理商目前不定制他们的语言他们在这项试点研究中沟通的人的类型,我们衡量了人类对基本用户特质信息的看法 - 性别和年龄 - 是通过文本控制的。利用自动模型的性别和年龄预测,我们估计用户发布的哪些推文更有可能错误地描述他的特征,我们执行多种受控众包实验,我们表明我们可以降低性别的人类预测准确性几乎随机 - 准确度超过20%。我们的实验表明,对于文本生成,文本摘要或机器翻译等多种应用,它实际上是可行的,以便对特定的特征量身定制并被视为这样。

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