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Attentive Long Short-Term Preference Modeling for Personalized Product Search (1811.10155v1)

Published 26 Nov 2018 in cs.IR

Abstract: E-commerce users may expect different products even for the same query, due to their diverse personal preferences. It is well-known that there are two types of preferences: long-term ones and short-term ones. The former refers to user' inherent purchasing bias and evolves slowly. By contrast, the latter reflects users' purchasing inclination in a relatively short period. They both affect users' current purchasing intentions. However, few research efforts have been dedicated to jointly model them for the personalized product search. To this end, we propose a novel Attentive Long Short-Term Preference model, dubbed as ALSTP, for personalized product search. Our model adopts the neural networks approach to learn and integrate the long- and short-term user preferences with the current query for the personalized product search. In particular, two attention networks are designed to distinguish which factors in the short-term as well as long-term user preferences are more relevant to the current query. This unique design enables our model to capture users' current search intentions more accurately. Our work is the first to apply attention mechanisms to integrate both long- and short-term user preferences with the given query for the personalized search. Extensive experiments over four Amazon product datasets show that our model significantly outperforms several state-of-the-art product search methods in terms of different evaluation metrics.

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Authors (6)
  1. Yangyang Guo (45 papers)
  2. Zhiyong Cheng (52 papers)
  3. Liqiang Nie (191 papers)
  4. Yinglong Wang (17 papers)
  5. Jun Ma (347 papers)
  6. Mohan Kankanhalli (117 papers)
Citations (97)

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