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Combining Distributional Semantics and Entity Linking for Context-Aware Content-Based Recommendation

机译:组合分发语义和实体链接上下文知识基于内容的推荐

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The effectiveness of content-based recommendation strategies tremendously depends on the representation formalism adopted to model both items and user profiles. As a consequence, techniques for semantic content representation emerged thanks to their ability to filter out the noise and to face with the issues typical of keyword-based representations. This article presents Contextual eVSM (C-eVSM), a content-based context-aware recommendation framework that adopts a novel semantic representation based on distributional models and entity linking techniques. Our strategy is based on two insights: first, entity linking can identify the most relevant concepts mentioned in the text and can easily map them with structured information sources, easily triggering some inference and reasoning on user preferences, while distributional models can provide a lightweight semantics representation based on term co-occurrences that can bring out latent relationships between concepts by just analying their usage patterns in large corpora of data. The resulting framework is fully domain-independent and shows better performance than state-of-the-art algorithms in several experimental settings, confirming the validity of content-based approaches and paving the way for several future research directions.
机译:基于内容的建议策略的有效性大大取决于为模拟项目和用户配置文件而采用的代表性形式主义。因此,由于其能够通过滤除噪声和基于关键字的表示的典型问题而出现了语义内容表示的技术。本文提出了上下文EVSM(C-EVSM),这是一种基于内容的上下文感知推荐框架,其采用基于分布模型和实体链接技术的新颖语义表示。我们的策略基于两个见解:首先,实体链接可以识别文本中提到的最相关的概念,可以轻松地将它们用结构化信息源映射它们,轻松触发用户偏好的一些推理和推理,而分布模型可以提供轻量级语义基于术语共同发生的表示,通过在数据的大型数据中分析其使用模式,可以在概念之间带来潜在关系。由此产生的框架是完全域的独立域,并且比若干实验设置中最先进的算法显示出更好的性能,确认基于内容的方法和铺平了几个未来的研究方向的方法。

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