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Results of the Big ANN: NeurIPS'23 competition

25 September 2024
H. Simhadri
Martin Aumüller
Amir Ingber
Matthijs Douze
G. Williams
Magdalen Dobson Manohar
Dmitry Baranchuk
Edo Liberty
Frank Liu
Ben Landrum
Mazin Karjikar
Laxman Dhulipala
Meng Chen
Yue Chen
Rui Ma
Kai Zhang
Y. Cai
Jiayang Shi
Yizhuo Chen
W. J. Zheng
Zihao Wan
Jie Yin
Ben Huang
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Abstract

The 2023 Big ANN Challenge, held at NeurIPS 2023, focused on advancing the state-of-the-art in indexing data structures and search algorithms for practical variants of Approximate Nearest Neighbor (ANN) search that reflect the growing complexity and diversity of workloads. Unlike prior challenges that emphasized scaling up classical ANN search ~\cite{DBLP:conf/nips/SimhadriWADBBCH21}, this competition addressed filtered search, out-of-distribution data, sparse and streaming variants of ANNS. Participants developed and submitted innovative solutions that were evaluated on new standard datasets with constrained computational resources. The results showcased significant improvements in search accuracy and efficiency over industry-standard baselines, with notable contributions from both academic and industrial teams. This paper summarizes the competition tracks, datasets, evaluation metrics, and the innovative approaches of the top-performing submissions, providing insights into the current advancements and future directions in the field of approximate nearest neighbor search.

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