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Embarrassingly Shallow Autoencoders for Sparse Data

2019/05/08 by Harald Steck · 2 citations
Computer Science · Mathematics · #cs.IR #cs.LG #stat.ML

paper · pdf · doi:10.1145/3308558.3313710

In the proceedings of the Web Conference (WWW) 2019 (7 pages)

arxiv created 2019/05/08 · arxiv updated 2019/05/10

Abstract

Combining simple elements from the literature, we define a linear model that is geared toward sparse data, in particular implicit feedback data for recommender systems. We show that its training objective has a closed-form solution, and discuss the resulting conceptual insights. Surprisingly, this simple model achieves better ranking accuracy than various state-of-the-art collaborative-filtering approaches, including deep non-linear models, on most of the publicly available data-sets used in our experiments.

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