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Papers/Collaborative Translational Metric Learning

Collaborative Translational Metric Learning

Chanyoung Park, Donghyun Kim, Xing Xie, Hwanjo Yu

2019-06-04Knowledge Graph EmbeddingMetric LearningTranslationGraph Embedding
PaperPDFCodeCode(official)

Abstract

Recently, matrix factorization-based recommendation methods have been criticized for the problem raised by the triangle inequality violation. Although several metric learning-based approaches have been proposed to overcome this issue, existing approaches typically project each user to a single point in the metric space, and thus do not suffice for properly modeling the intensity and the heterogeneity of user-item relationships in implicit feedback. In this paper, we propose TransCF to discover such latent user-item relationships embodied in implicit user-item interactions. Inspired by the translation mechanism popularized by knowledge graph embedding, we construct user-item specific translation vectors by employing the neighborhood information of users and items, and translate each user toward items according to the user's relationships with the items. Our proposed method outperforms several state-of-the-art methods for top-N recommendation on seven real-world data by up to 17% in terms of hit ratio. We also conduct extensive qualitative evaluations on the translation vectors learned by our proposed method to ascertain the benefit of adopting the translation mechanism for implicit feedback-based recommendations.

Results

TaskDatasetMetricValueModel
Recommendation SystemsTradesyHits@100.3198TransCF
Recommendation SystemsTradesyHits@200.4505TransCF
Recommendation SystemsTradesynDCG@100.1767TransCF
Recommendation SystemsTradesynDCG@200.2095TransCF
Recommendation SystemsAmazon C&AHits@100.3436TransCF
Recommendation SystemsAmazon C&AHits@200.4658TransCF
Recommendation SystemsAmazon C&AnDCG@100.2019TransCF
Recommendation SystemsAmazon C&AnDCG@200.2323TransCF
Recommendation SystemsCiaoHits@100.2292TransCF
Recommendation SystemsCiaoHits@200.374TransCF
Recommendation SystemsCiaonDCG@100.1167TransCF
Recommendation SystemsCiaonDCG@200.1525TransCF
Recommendation SystemsFlixsterHits@100.7309TransCF
Recommendation SystemsFlixsterHits@200.8374TransCF
Recommendation SystemsFlixsternDCG@100.4986TransCF
Recommendation SystemsFlixsternDCG@200.5257TransCF
Recommendation SystemsDecliciousHits@100.2586TransCF
Recommendation SystemsDecliciousHits@200.3786TransCF
Recommendation SystemsDecliciousnDCG@100.1475TransCF
Recommendation SystemsDecliciousnDCG@200.1781TransCF
Recommendation SystemsPinterestHits@100.5504TransCF
Recommendation SystemsPinterestHits@200.8108TransCF
Recommendation SystemsPinterestnDCG@100.258TransCF
Recommendation SystemsPinterestnDCG@200.3242TransCF
Recommendation SystemsBook-CrossingHits@100.3329TransCF
Recommendation SystemsBook-CrossingHits@200.4744TransCF
Recommendation SystemsBook-CrossingnDCG@100.1865TransCF
Recommendation SystemsBook-CrossingnDCG@200.2221TransCF

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