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Explaining collaborative filtering recommendations

Published: 01 December 2000 Publication History

Abstract

Automated collaborative filtering (ACF) systems predict a person's affinity for items or information by connecting that person's recorded interests with the recorded interests of a community of people and sharing ratings between like-minded persons. However, current recommender systems are black boxes, providing no transparency into the working of the recommendation. Explanations provide that transparency, exposing the reasoning and data behind a recommendation. In this paper, we address explanation interfaces for ACF systems - how they should be implemented and why they should be implemented. To explore how, we present a model for explanations based on the user's conceptual model of the recommendation process. We then present experimental results demonstrating what components of an explanation are the most compelling. To address why, we present experimental evidence that shows that providing explanations can improve the acceptance of ACF systems. We also describe some initial explorations into measuring how explanations can improve the filtering performance of users.

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cover image ACM Conferences
CSCW '00: Proceedings of the 2000 ACM conference on Computer supported cooperative work
December 2000
346 pages
ISBN:1581132220
DOI:10.1145/358916
Permission to make digital or hard copies of all or part of this work for personal or classroom use is granted without fee provided that copies are not made or distributed for profit or commercial advantage and that copies bear this notice and the full citation on the first page. Copyrights for components of this work owned by others than ACM must be honored. Abstracting with credit is permitted. To copy otherwise, or republish, to post on servers or to redistribute to lists, requires prior specific permission and/or a fee. Request permissions from [email protected]

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Publication History

Published: 01 December 2000

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Author Tags

  1. GroupLens
  2. MoviesLens
  3. collaborative filtering
  4. explanations
  5. recommender systems

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CSCW00
CSCW00: Computer Supported Cooperative Work
Pennsylvania, Philadelphia, USA

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CSCW '00 Paper Acceptance Rate 36 of 199 submissions, 18%;
Overall Acceptance Rate 2,235 of 8,521 submissions, 26%

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  • (2024)A Time–Frequency Image Quality Evaluation Method Based on Improved LIMEApplied Sciences10.3390/app1407291714:7(2917)Online publication date: 29-Mar-2024
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