2021
DOI: 10.1609/aaai.v35i17.17807
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A Reciprocal Embedding Framework For Modelling Mutual Preferences

Abstract: Understanding the mutual preferences between potential dating partners is core to the success of modern web-scale personalized recommendation systems that power online dating platforms. In contrast to classical user-item recommendation systems which model the unidirectional preferences of users to items, understanding the bidirectional preferences between people in a reciprocal recommendation system is more complex and challenging given the dynamic nature of interactions. In this paper, we describe a reciproca… Show more

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