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The neurobench framework for benchmarking neuromorphic computing algorithms and systems.

Authors :
Yik, Jason
Van den Berghe, Korneel
den Blanken, Douwe
Bouhadjar, Younes
Fabre, Maxime
Hueber, Paul
Ke, Weijie
Khoei, Mina A.
Kleyko, Denis
Pacik-Nelson, Noah
Pierro, Alessandro
Stratmann, Philipp
Sun, Pao-Sheng Vincent
Tang, Guangzhi
Wang, Shenqi
Zhou, Biyan
Ahmed, Soikat Hasan
Vathakkattil Joseph, George
Leto, Benedetto
Micheli, Aurora
Source :
Nature Communications; 2/11/2025, Vol. 16 Issue 1, p1-24, 24p
Publication Year :
2025

Abstract

Neuromorphic computing shows promise for advancing computing efficiency and capabilities of AI applications using brain-inspired principles. However, the neuromorphic research field currently lacks standardized benchmarks, making it difficult to accurately measure technological advancements, compare performance with conventional methods, and identify promising future research directions. This article presents NeuroBench, a benchmark framework for neuromorphic algorithms and systems, which is collaboratively designed from an open community of researchers across industry and academia. NeuroBench introduces a common set of tools and systematic methodology for inclusive benchmark measurement, delivering an objective reference framework for quantifying neuromorphic approaches in both hardware-independent and hardware-dependent settings. For latest project updates, visit the project website (neurobench.ai). Brain-inspired neuromorphic algorithms and systems have shown essential advance in efficiency and capabilities of AI applications. In this Perspective, the authors introduce NeuroBench, a benchmark framework for neuromorphic approaches, collaboratively designed by researchers across industry and academia. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
20411723
Volume :
16
Issue :
1
Database :
Complementary Index
Journal :
Nature Communications
Publication Type :
Academic Journal
Accession number :
182958084
Full Text :
https://doi.org/10.1038/s41467-025-56739-4