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From Amateurs to Connoisseurs: Modeling the Evolution of User Expertise through Online Reviews

机译:从业余爱好者到鉴赏家:通过在线评论模拟用户专业知识的演变

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Recommending products to consumers means not only understanding their tastes, but also understanding their level of experience. For example, it would be a mistake to recommend the iconic film Seven Samurai simply because a user enjoys other action movies; rather, we might conclude that they will eventually enjoy it-once they are ready. The same is true for beers, wines, gourmet foods-or any products where users have acquired tastes: the 'best' products may not be the most 'accessible'. Thus our goal in this paper is to recommend products that a user will enjoy now, while acknowledging that their tastes may have changed over time, and may change again in the future. We model how tastes change due to the very act of consuming more products-in other words, as users become more experienced. We develop a latent factor recommendation system that explicitly accounts for each user's level of experience. We find that such a model not only leads to better recommendations, but also allows us to study the role of user experience and expertise on a novel dataset of fifteen million beer, wine, food, and movie reviews.
机译:向消费者推荐产品不仅意味着了解他们的口味,而且还意味着了解他们的体验水平。例如,仅仅因为用户喜欢其他动作电影而推荐标志性电影《七武士》是错误的。相反,我们可能会得出结论,一旦准备就绪,他们最终会喜欢上它。啤酒,葡萄酒,美食-或用户获得口味的任何产品也是如此:“最好”的产品可能不是最“容易获得”的产品。因此,本文的目的是推荐用户现在将喜欢的产品,同时确认其口味可能会随着时间而改变,并且将来可能会再次改变。我们模拟了由于消费更多产品(换言之,随着用户变得更有经验)的行为,口味如何变化。我们开发了一个潜在因素推荐系统,该系统明确考虑了每个用户的体验水平。我们发现,这样的模型不仅可以带来更好的建议,还可以使我们在1500万啤酒,葡萄酒,食物和电影评论的新颖数据集上研究用户体验和专业知识的作用。

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