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arxiv logo>cs> arXiv:2211.09303
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Computer Science > Information Retrieval

arXiv:2211.09303 (cs)
[Submitted on 17 Nov 2022]

Title:A Bird's-eye View of Reranking: from List Level to Page Level

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Abstract:Reranking, as the final stage of multi-stage recommender systems, refines the initial lists to maximize the total utility. With the development of multimedia and user interface design, the recommendation page has evolved to a multi-list style. Separately employing traditional list-level reranking methods for different lists overlooks the inter-list interactions and the effect of different page formats, thus yielding suboptimal reranking performance. Moreover, simply applying a shared network for all the lists fails to capture the commonalities and distinctions in user behaviors on different lists. To this end, we propose to draw a bird's-eye view of \textbf{page-level reranking} and design a novel Page-level Attentional Reranking (PAR) model. We introduce a hierarchical dual-side attention module to extract personalized intra- and inter-list interactions. A spatial-scaled attention network is devised to integrate the spatial relationship into pairwise item influences, which explicitly models the page format. The multi-gated mixture-of-experts module is further applied to capture the commonalities and differences of user behaviors between different lists. Extensive experiments on a public dataset and a proprietary dataset show that PAR significantly outperforms existing baseline models.
Comments:WSDM 2023. More readable and full version
Subjects:Information Retrieval (cs.IR)
Cite as:arXiv:2211.09303 [cs.IR]
 (orarXiv:2211.09303v1 [cs.IR] for this version)
 https://doi.org/10.48550/arXiv.2211.09303
arXiv-issued DOI via DataCite

Submission history

From: Jianghao Lin [view email]
[v1] Thu, 17 Nov 2022 02:42:00 UTC (19,947 KB)
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