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Home / Proceedings / Proceedings of the AAAI Conference on Artificial Intelligence, 35 / No. 5: AAAI-21 Technical Tracks 5

A Hybrid Bandit Framework for Diversified Recommendation

February 1, 2023

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Authors

Qinxu Ding

Alibaba-NTU Singapore Joint Research Institute


Yong Liu

Alibaba-NTU Singapore Joint Research Institute Joint NTU-UBC Research Centre of Excellence in Active Living for the Elderly (LILY)


Chunyan Miao

School of Computer Science and Engineering, Nanyang Technological University


Fei Cheng

Alibaba Group


Haihong Tang

Alibaba Group


DOI:

10.1609/aaai.v35i5.16524


Abstract:

The interactive recommender systems involve users in the recommendation procedure by receiving timely user feedback to update the recommendation policy. Therefore, they are widely used in real application scenarios. Previous interactive recommendation methods primarily focus on learning users' personalized preferences on the relevance properties of an item set. However, the investigation of users' personalized preferences on the diversity properties of an item set is usually ignored. To overcome this problem, we propose the Linear Modular Dispersion Bandit (LMDB) framework, which is an online learning setting for optimizing a combination of modular functions and dispersion functions. Specifically, LMDB employs modular functions to model the relevance properties of each item, and dispersion functions to describe the diversity properties of an item set. Moreover, we also develop a learning algorithm, called Linear Modular Dispersion Hybrid (LMDH) to solve the LMDB problem and derive a gap-free bound on its n-step regret. Extensive experiments on real datasets are performed to demonstrate the effectiveness of the proposed LMDB framework in balancing the recommendation accuracy and diversity.

Topics: AAAI

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HOW TO CITE:

Qinxu Ding||Yong Liu||Chunyan Miao||Fei Cheng||Haihong Tang A Hybrid Bandit Framework for Diversified Recommendation Proceedings of the AAAI Conference on Artificial Intelligence (2021) 4036-4044.

Qinxu Ding||Yong Liu||Chunyan Miao||Fei Cheng||Haihong Tang A Hybrid Bandit Framework for Diversified Recommendation AAAI 2021, 4036-4044.

Qinxu Ding||Yong Liu||Chunyan Miao||Fei Cheng||Haihong Tang (2021). A Hybrid Bandit Framework for Diversified Recommendation. Proceedings of the AAAI Conference on Artificial Intelligence, 4036-4044.

Qinxu Ding||Yong Liu||Chunyan Miao||Fei Cheng||Haihong Tang. A Hybrid Bandit Framework for Diversified Recommendation. Proceedings of the AAAI Conference on Artificial Intelligence 2021 p.4036-4044.

Qinxu Ding||Yong Liu||Chunyan Miao||Fei Cheng||Haihong Tang. 2021. A Hybrid Bandit Framework for Diversified Recommendation. "Proceedings of the AAAI Conference on Artificial Intelligence". 4036-4044.

Qinxu Ding||Yong Liu||Chunyan Miao||Fei Cheng||Haihong Tang. (2021) "A Hybrid Bandit Framework for Diversified Recommendation", Proceedings of the AAAI Conference on Artificial Intelligence, p.4036-4044

Qinxu Ding||Yong Liu||Chunyan Miao||Fei Cheng||Haihong Tang, "A Hybrid Bandit Framework for Diversified Recommendation", AAAI, p.4036-4044, 2021.

Qinxu Ding||Yong Liu||Chunyan Miao||Fei Cheng||Haihong Tang. "A Hybrid Bandit Framework for Diversified Recommendation". Proceedings of the AAAI Conference on Artificial Intelligence, 2021, p.4036-4044.

Qinxu Ding||Yong Liu||Chunyan Miao||Fei Cheng||Haihong Tang. "A Hybrid Bandit Framework for Diversified Recommendation". Proceedings of the AAAI Conference on Artificial Intelligence, (2021): 4036-4044.

Qinxu Ding||Yong Liu||Chunyan Miao||Fei Cheng||Haihong Tang. A Hybrid Bandit Framework for Diversified Recommendation. AAAI[Internet]. 2021[cited 2023]; 4036-4044.


ISSN: 2374-3468


Published by AAAI Press, Palo Alto, California USA
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