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A New Method of Context-based Multidimensional Collaborative Filtering Recommendation

机译:基于语境的多维协同过滤推荐一种新方法

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Most existing recommender systems offer calculation of recommendation in user-item dimensions, omitting the context information.Context is the dynamic information describing the situation of items and users which affects the users' decisions.This paper proposed a novel collaborative filtering method to take contextual information into consideration.We presented a context-based multidimensional collaborative filtering recommendation model.Using the multidimensional approaches, we introduced how to build the context-based multidimensional users' profile and discussed the parts of the model in details.Furthermore, we elaborated on the contextbased multidimensional collaborative filtering algorithms.We described a new algorithm to figure out the similarities between the previous contexts and the current context of the active user, and designed a new equation to get the context-based ratings of the nearest neighbors of the active user.And then we worked out the ultimate rating of the active user as the aggregate of the ratings of the nearest neighbors.This study hopes that by establishing context-based multidimensional users' profile and using the new algorithms, the recommendation quality will be largely increased.
机译:大多数现有的推荐系统提供用户项尺寸的推荐计算,省略上下文信息.Context是描述影响用户决策的项目和用户情况的动态信息。本文提出了一种采用新颖的协作滤波方法来采取上下文信息考虑到。我们介绍了一种基于上下文的多维协同过滤推荐模型。我们介绍了如何构建基于上下文的多维用户的配置文件,并讨论了详细信息中的模型的部分。更多,我们在ContextBased上详细说明多维协同过滤算法。我们描述了一种新的算法来弄清出前面的上下文与活动用户的当前上下文之间的相似性,并设计了一种新的方程来获取活动用户的最近邻居的基于上下文的额定值。然后我们制定了活跃的最终评价用户作为最近邻居评级的聚合。本研究希望通过建立基于上下文的多维用户的配置文件并使用新算法,建议质量将大大增加。

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