• KSII Transactions on Internet and Information Systems
    Monthly Online Journal (eISSN: 1976-7277)

Auxiliary Stacked Denoising Autoencoder based Collaborative Filtering Recommendation

Vol. 14, No. 6, June 30, 2020
10.3837/tiis.2020.06.001, Download Paper (Free):

Abstract

In recent years, deep learning techniques have achieved tremendous successes in natural language processing, speech recognition and image processing. Collaborative filtering(CF) recommendation is one of widely used methods and has significant effects in implementing the new recommendation function, but it also has limitations in dealing with the problem of poor scalability, cold start and data sparsity, etc. Combining the traditional recommendation algorithm with the deep learning model has brought great opportunity for the construction of a new recommender system. In this paper, we propose a novel collaborative recommendation model based on auxiliary stacked denoising autoencoder(ASDAE), the model learns effective the preferences of users from auxiliary information. Firstly, we integrate auxiliary information with rating information. Then, we design a stacked denoising autoencoder based collaborative recommendation model to learn the preferences of users from auxiliary information and rating information. Finally, we conduct comprehensive experiments on three real datasets to compare our proposed model with state-of-the-art methods. Experimental results demonstrate that our proposed model is superior to other recommendation methods.


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Cite this article

[IEEE Style]
R. Mu and X. Zeng, "Auxiliary Stacked Denoising Autoencoder based Collaborative Filtering Recommendation," KSII Transactions on Internet and Information Systems, vol. 14, no. 6, pp. 2310-2332, 2020. DOI: 10.3837/tiis.2020.06.001.

[ACM Style]
Ruihui Mu and Xiaoqin Zeng. 2020. Auxiliary Stacked Denoising Autoencoder based Collaborative Filtering Recommendation. KSII Transactions on Internet and Information Systems, 14, 6, (2020), 2310-2332. DOI: 10.3837/tiis.2020.06.001.