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ACM Conference on Recommender Systems information


ACM Conference on Recommender Systems
AbbreviationRecSys
DisciplineRecommender Systems
Publication details
PublisherACM
History2007–present
FrequencyAnnual

ACM Conference on Recommender Systems (ACM RecSys) is a peer-reviewed academic conference series about recommender systems. Sponsored by the Association for Computing Machinery. This conference series focuses on issues such as algorithms, machine learning, human-computer interaction, and data science from a multi-disciplinary perspective. The conference community includes computer scientists, statisticians, social scientists, psychologists, and others.

The conference is sponsored by Big Tech companies such as Amazon, Netflix, Meta, Nvidia, Microsoft, Google, and Spotify, and large foundations such as the NSF.[1]

While an academic conference, RecSys attracts many practitioners and industry researchers, with industry attendance making up the majority of attendees,[2] this is also reflected in the authorship of research papers.[3] Many works published at the conference have direct impact on recommendation and personalization practice in industry[4][5][6] affecting millions of users.

Recommender systems are pervasive in online systems, the conference provides opportunities for researchers and practitioners to address specific problems in various workshops in conjunction with the conference, topics include responsible recommendation,[7] causal reasoning,[8] and others. The workshop themes follow recent developments in the broader machine learning and human-computer interaction topics.

The conference is the host of the ACM RecSys Challenge, a yearly competition in the spirit of the Netflix Prize focussing on a specific recommendation problem. The Challenge has been organized by companies such as Twitter,[9] and Spotify.[10] Participation in the challenge is open to everyone and participation in it has become a means of showcasing ones skills in recommendations,[11][12] similar to Kaggle competitions.

  1. ^ "ACM RecSys 2022 Sponsorship". Retrieved 2022-09-08.
  2. ^ "RecSys 2020 Welcome Session". YouTube. Retrieved 2022-09-26.
  3. ^ "TD Bank creates AI-powered Spotify playlist to win contest". Retrieved 2022-09-26.
  4. ^ "Wie entwickelt das ZDF Empfehlungsalgorithmen?" (in German). Retrieved 2022-09-26.
  5. ^ "Διεθνής διάκριση ερευνητικής ομάδας του ΕΛΜΕΠΑ στο διαγωνισμό πληροφορικής του RecSys" (in Greek). Retrieved 2022-09-26.
  6. ^ "Reverse Engineering The YouTube Algorithm: Part II". Retrieved 2022-09-26.
  7. ^ "The People Trying to Make Internet Recommendations Less Toxic". Retrieved 2022-09-27.
  8. ^ "New workshop to help bring causal reasoning to recommendation systems".
  9. ^ "RecSys Challenge 2021". Retrieved 2022-09-08.
  10. ^ "RecSys Challenge 2018". Retrieved 2022-09-08.
  11. ^ "Inside TD's AI play: How Layer 6's technology hopes to improve old-fashioned banking advice". The Globe and Mail. Retrieved 2022-09-27.
  12. ^ "TD's Layer 6 wins Spotify RecSys Challenge 2018". Retrieved 2023-02-13.

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Retrieved 30 October 2019 – via ACM Digital Library. Gachet, A. (2004). Building Model-Driven Decision Support Systems with Dicodess. Zurich, VDF. Power...

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International Conference on Web Search and Data mining (WSDM) ACM SIGWEB Cooperating Conferences are as the following: The ACM Conference on Recommender Systems (RecSys)...

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CiteSeerX

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Relevance

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appears to be difficult or impossible to capture within conventional logical systems. The obvious suggestion that q is relevant to p if q is implied by p breaks...

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significant difference in the ranking of the "top-10" most recommended movies for a user. Prizes were based on improvement over Netflix's own algorithm, called...

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Long tail

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smaller niches. Not all recommender systems are equal, however, when it comes to expanding the long tail. Some recommenders (i.e. certain collaborative...

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Boi Faltings

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zero results through the filtering system. Scoring systems – Scoring systems are often found on recommender systems and allow users to rate products for...

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interface controls reduction". Proceedings of the 2008 ACM conference on Recommender systems. pp. 235–242. Retrieved November 9, 2013. Oostendorp, Nathan;...

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