首页> 外文会议>Conference on the North American Chapter of the Association for Computational Linguistics: Human Language Technologies >Let's Make Your Request More Persuasive: Modeling Persuasive Strategies via Semi-Supervised Neural Nets on Crowdfunding Platforms
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Let's Make Your Request More Persuasive: Modeling Persuasive Strategies via Semi-Supervised Neural Nets on Crowdfunding Platforms

机译:让我们提出更多有说服力的要求:通过在Crowdfunding平台上通过半监督的神经网建模说服策略

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Modeling what makes a request persuasive— eliciting the desired response from a reader— is critical to the study of propaganda, behavioral economics, and advertising. Yet current models can't quantify the persuasiveness of requests or extract successful persuasive strategies. Building on theories of persuasion, we propose a neural network to quantify persuasiveness and identify the persuasive strategies in advocacy requests. Our semi-supervised hierarchical neural network model is supervised by the number of people persuaded to take actions and partially supervised at the sentence level with human-labeled rhetorical strategies. Our method outperforms several baselines, uncovers persuasive strategics-offering increased interpretability of persuasive speech-and has applications for other situations with document-level supervision but only partial sentence supervision.
机译:建模是提出说服力 - 引发读者所需的响应 - 对宣传,行为经济学和广告的研究至关重要。然而,目前的模型无法量化请求或提取成功说服力策略的说服性。建立劝说理论,建议一个神经网络量化有说服力,并确定宣传要求中的说服力策略。我们的半监督分层神经网络模型受到说服采取行动的人数,并在句子水平与人为标题的修辞策略中部分监督的人数。我们的方法优于几个基线,揭示有说服力的战略 - 提供有说服力的语音的可解释性 - 并具有与文件级监管的其他情况的申请,但只有部分句子监督。

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