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Community-aware diversification of recommendations

  • University College Cork
Research Output:
Conference Article in Proceeding or Book/Report chapter
Article in proceedings
Peer-review

Open access

Publication Information

Output type

Research Output:
Conference Article in Proceeding or Book/Report chapter
Article in proceedings
Peer-review

Original language

English

Pages from-to (Number of pages)

Pages 1639 - 1646 (8 pages)

Publication milestones

  • Published - 2019

Publication status

Published - 2019

Publisher

Association for Computing Machinery, United States
978-1-4503-5933-7

Publication IDs

  • ORCID: /0000-0003-2305-6683/work/140557670
  • Scopus: 85065652332

Host publication title

Proceedings of the ACM Symposium on Applied Computing

Abstract

Intent-aware methods for recommendation diversification seek to ensure that the recommended items cover so-called aspects, which are assumed to define the user's tastes and interests. Most typically, aspects are item features such as movie or music genres. In recent work, we presented a novel intent-aware diversification method, called Subprofile-Aware Diversification (SPAD). In SPAD, aspects are subprofiles of the active user's profile, detected using an item-item similarity method. In this paper, we propose Community-Aware Diversification (CAD), in which aspects are again subprofiles but are detected indirectly through users who are similar to the active user. We evaluate CAD's precision and diversity on four different datasets, and compare it with SPAD and an intent-aware diversification method called xQuAD. We show that on two of the datasets SPAD outperforms CAD, but for the other two CAD outperforms SPAD. For all datasets, both CAD and SPAD achieve higher precision than xQuAD. When it comes to diversity, xQuAD sometimes results in more diverse recommendations but it is more prone to paying for this diversity with decreases in precision. Arguably, SPAD and CAD strike a better balance between the two.

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Citations
3
Captures
9

Funding Details

This paper emanates from research supported by a grant from Science Foundation Ireland (SFI) under Grant Number SFI/12/RC/2289 which is co-funded under the European Regional Development Fund.
FundersFunding numbers
Science Foundation Ireland
SFI/12/RC/2289
European Regional Development Fund
-

Access to documents

Related Event

Title

The 34th ACM/SIGAPP Symposium on Applied Computing

Event type

Conference

Degree of recognition

International event

Date

08/04/2019 - 12/04/2019

Location

LimassolCyprus