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Are words enough? A study on text-based representations and retrieval models for linking pins to online shops

机译:话够了吗?基于文本的表示形式和将销钉链接到网上商店的检索模型的研究

摘要

User-generated content offers opportunities to learn about people's interests and hobbies. We can leverage this information to help users find interesting shops and businesses find interested users. However this content is highly noisy and unstructured as posted on social media sites and blogs.In this work we evaluate different textual representations and retrieval models that aim to make sense of social media data for retail applications. Our task is to link the text of pins (from Pinterest.com) to online shops (formed by clustering Amazon.com's products). Our results show that document representations that combine latent concepts with single words yield the best performance.
机译:用户生成的内容为了解人们的兴趣和爱好提供了机会。我们可以利用这些信息来帮助用户找到有趣的商店,而企业则找到感兴趣的用户。但是,此内容在社交媒体网站和博客上发布时非常嘈杂且结构混乱。在这项工作中,我们评估了各种文本表示形式和检索模型,旨在理解零售应用中的社交媒体数据。我们的任务是将图钉(来自Pinterest.com)的文本链接到在线商店(由对Amazon.com产品的群集形成)。我们的结果表明,将潜在概念与单个单词结合在一起的文档表示形式可产生最佳性能。

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