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Application of Multi-Attribute Rating Matrix in Cold-start Recommendation

机译:多属性评价矩阵在冷启动推荐中的应用

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this recommendation algorithm based on User-Item Rating Matrix is inefficient in the case of cold-start. The Application of Multi-Attribute Rating Matrix (MARM) can solve the problem effectively. The user and item information are analyzed to create their attribute-tables. The user's ratings are mapped to the relevant item attributes and the user's attributes respectively to generate a User Attribute-Item Attribute Rating Matrix (UAIARM). After UAIARM is simplified, MARM will be created. When a new item/user enters into this system, the attributes of new item/user and MARM are matched to find the N users/item with the highest match degrees as the target of the new items or the recommended items. Experiment results validate the cold-start recommendation algorithm based on MARM is efficient.
机译:这种基于用户项目评分矩阵的推荐算法在冷启动的情况下效率低下。多属性评价矩阵(MARM)的应用可以有效地解决这一问题。分析用户和项目信息以创建其属性表。用户的等级分别映射到相关的项目属性和用户的属性,以生成用户属性-项目属性等级矩阵(UAIARM)。简化UAIARM之后,将创建MARM。当新项目/用户进入该系统时,新项目/用户和MARM的属性将匹配,以找到匹配度最高的N个用户/项目作为新项目或推荐项目的目标。实验结果验证了基于MARM的冷启动推荐算法是有效的。

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