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A re-ranking technique for diversified recommendations

机译:一种多元化建议的重新排名技术

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User satisfaction is the most important challenge for any user oriented system. Especially in today's world where tremendous amount of information is available, which can be used for knowledge discovery to find out user's interest. Recommender systems which are simulations of web personalization are now days widely integrated in various domains for quality improvements. Recent studies has shown that to improve user satisfaction one should also consider other quality factors such as diversity rather than relying only on accuracy of recommendations. We propose a hybrid approach of recommendation which re-ranks the most relevant predicted items according to the specified criteria MCBRT. We aim at maintaining substantially higher aggregate diversity across all users while maintaining adequate level of recommendation accuracy.
机译:用户满意度是任何面向用户的系统最重要的挑战。特别是在今天的世界上有大量信息的世界,这可以用于知识发现以找出用户的兴趣。现在是Web个性化模拟的推荐系统现在广泛集成在各个领域中的质量改进。最近的研究表明,为了提高用户满意度,也应该考虑其他质量因素,如多样性,而不是依赖于建议的准确性。我们提出了一种关于根据指定标准MCBRT重新排名最相关预测项目的建议的混合方法。我们的目的,在所有用户之间维持大幅提高的总体多样性,同时保持足够的建议准确性水平。

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