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Neural architecture codesign for fast physics applications

We develop a pipeline to streamline neural architecture codesign for physics applications to reduce the need for ML expertise when designing models for novel tasks. Our method employs neural architecture search and network compression in a two-stage approach to discover hardware efficient models. Th...

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Bibliografische Detailangaben
Hauptverfasser: Jason Weitz, Dmitri Demler, Luke McDermott, Nhan Tran, Javier Duarte
Format: Artigo
Sprache:Inglês
Veröffentlicht: IOP Publishing 2025-01-01
Schriftenreihe:Machine Learning: Science and Technology
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Online-Zugang:https://doi.org/10.1088/2632-2153/adede1
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