JFS3-5 - 12:10 On Chip Customized Learning on Resistive Memory...

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    JFS3-5 - 12:10
    On Chip Customized Learning on Resistive Memory Technology for Secure Edge AI, M. Pallo*, **, S. D'Agostino**, M.
    Piccoli**, ***, D. E. Bonnet**, N. Castellani**, G. Piccolboni*, M. A. Iftakher***, J.-F. Nodin**, F. Andrieu**, D. Querlioz***, G. Molas*,
    L. Hutin** and E. Vianello**, *Weebit Nano FR, **CEA-LETI and ***CNRS (Centre national de la recherche scientifique), France
    This paper presents the first experimental demonstration of few-shot on-chip training on an in-memory computing resistive
    memory (ReRAM) platform. We use the Model- Agnostic Meta-Learning (MAML) algorithm to reduce training iterations and
    associated ReRAM conductance updates by orders of magnitude. Through co-optimization of device programming conditions
    and the algorithm, we achieve >97% accuracy on the Omniglot dataset after just five training iterations (i.e., ReRAM
    programming operations) while improving device retention at 150°C

    Lots happening in Kyoto.............hope we can stand out a bit
    VLSI2025_Advanceprogram0606-3.pdf
 
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