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Deflated reputation using multiplicative long short-term memory neural networks

机译:使用乘法长短短期记忆神经网络流放的声誉

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摘要

Current reputation systems are facing the inflation problem, which renders reputation systems to lose information and sometimes even cause misunderstandings. To address this problem, we propose a data-driven approach that combines natural language processing techniques with the conditional logit model for reputation deflation. We consider multiplicative long short-term memory neural networks (mLSTM) to predict sentiment scores from the feedback content. The mLSTM was pre-trained on 82.83 million unique reviews. We conduct experiments on one of the largest online labor marketplaces, Freelancer.com. We focus on comparing ratings and predicted sentiment scores in the online labor market. The results show that our proposed model can estimate deflated reputation information effectively. In addition, the estimated sentiment score is a quality disclosure signal, and has a better effect on the market outcome than the inflated reputation rating.
机译:目前的声誉系统正面临通货膨胀问题,使声誉系统丧失,甚至导致误解。为了解决这个问题,我们提出了一种数据驱动方法,将自然语言处理技术与条件Logit模型结合起来进行声誉放气。我们考虑乘法长短期内存神经网络(MLSTM)来预测来自反馈内容的情绪分数。 MLSTM预先培训82.83亿次综合评论。我们对最大的在线劳动力市场之一进行实验,Freelancer.com。我们专注于比较在线劳动力市场中的评级和预测情感分数。结果表明,我们所提出的模型可以有效地估算可流动的声誉信息。此外,估计的情绪评分是质量披露信号,对市场结果具有更好的影响,而不是膨胀声誉等级。

著录项

  • 来源
    《Future generation computer systems》 |2021年第5期|198-207|共10页
  • 作者单位

    School of Software Engineering Beijing Jiaotong University Beijing China International Center for Informatics Research Beijing Jiaotong University Beijing China;

    School of Economics and Management Beijing Jiaotong University Beijing China International Center for Informatics Research Beijing Jiaotong University Beijing China;

    School of Economics and Management Beijing Jiaotong University Beijing China;

    International Center for Informatics Research Beijing Jiaotong University Beijing China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Natural language processing (NLP); Sentiment analysis; Text mining; Reputation system;

    机译:自然语言处理(NLP);情绪分析;文字挖掘;声誉系统;
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