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A Computational Approach to Perceived Trustworthiness of Airbnb Host Profiles

机译:对Airbnb主机配置文件的可靠性认可的计算方法

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摘要

We developed a novel computational framework to predict the perceived trustworthiness of host profile texts in the context of online lodging marketplaces. To achieve this goal, we developed a dataset of 4,180 Airbnb host profiles annotated with perceived trustworthiness. To the best of our knowledge, the dataset along with our models allow for the first computational evaluation of perceived trustworthiness of textual profiles, which are ubiquitous in online peer-to-peer marketplaces. We provide insights into the linguistic factors that contribute to higher and lower perceived trustworthiness for profiles of different lengths.
机译:我们开发了一种新颖的计算框架,以预测在线住宿市场的背景下的主机配置文件的认可值得信赖。为了实现这一目标,我们开发了一个4,180 Airbnb主机配置文件的数据集,被认为是可信赖的。据我们所知,DataSet以及我们的模型允许对文本概况的感知值得信赖性的第一个计算评估,这在在线点对点市场中无处不在。我们提供对语言因素的见解,这些因素有助于更高,更低的感知值得信赖性的不同长度的概况。

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