An Energy-efficient Deep Neural Network Training Processor with Bit-slice-level Reconfigurability and Sparsity Exploitation

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dc.contributor.authorHan, Donghyeonko
dc.contributor.authorIm, Dongseokko
dc.contributor.authorPark, Gwangtaeko
dc.contributor.authorKim, Youngwooko
dc.contributor.authorSong, Seokchanko
dc.contributor.authorLee, Juhyoungko
dc.contributor.authorYoo, Hoi-Junko
dc.date.accessioned2021-10-29T00:50:12Z-
dc.date.available2021-10-29T00:50:12Z-
dc.date.created2021-10-27-
dc.date.issued2021-04-
dc.identifier.citationIEEE Symposium on Low-Power and High-Speed Chips (IEEE COOL CHIPS)-
dc.identifier.issn2473-4683-
dc.identifier.urihttp://hdl.handle.net/10203/288426-
dc.description.abstractThis paper presents an energy-efficient deep neural network (DNN) training processor through the four key features: 1) Layer-wise Adaptive bit-Precision Scaling (LAPS) with 2) In-Out Slice Skipping (IOSS) core, 3) double-buffered Reconfigurable Accumulation Network (RAN), 4) momentum-ADAM unified OPTimizer Core (OPTC). Thanks to the bit-slice-level scalability and zero-slice skipping, it shows 5.9 x higher energy-efficiency compared with the state-of-the-art on-chip-learning processor (OCLPs).-
dc.languageEnglish-
dc.publisherIEEE COMPUTER SOC-
dc.titleAn Energy-efficient Deep Neural Network Training Processor with Bit-slice-level Reconfigurability and Sparsity Exploitation-
dc.typeConference-
dc.identifier.wosid000672562100006-
dc.identifier.scopusid2-s2.0-85105459713-
dc.type.rimsCONF-
dc.citation.publicationnameIEEE Symposium on Low-Power and High-Speed Chips (IEEE COOL CHIPS)-
dc.identifier.conferencecountryJA-
dc.identifier.conferencelocationTokyo-
dc.identifier.doi10.1109/COOLCHIPS52128.2021.9410324-
dc.contributor.localauthorYoo, Hoi-Jun-
dc.contributor.nonIdAuthorHan, Donghyeon-
dc.contributor.nonIdAuthorIm, Dongseok-
dc.contributor.nonIdAuthorPark, Gwangtae-
dc.contributor.nonIdAuthorKim, Youngwoo-
dc.contributor.nonIdAuthorSong, Seokchan-
dc.contributor.nonIdAuthorLee, Juhyoung-
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EE-Conference Papers(학술회의논문)
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