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Fetch-Criticality Reduction through Control Independence.

, , , and . ISCA, page 13-24. IEEE Computer Society, (2008)

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Towards Next-Generation Intelligent Assistants Leveraging LLM Techniques., , , , and . KDD, page 5792-5793. ACM, (2023)PAPAYA: Practical, Private, and Scalable Federated Learning., , , , , , , , , and 4 other author(s). MLSys, mlsys.org, (2022)Federated Learning with Buffered Asynchronous Aggregation., , , , , , and . CoRR, (2021)Fetch-Criticality Reduction through Control Independence., , , and . ISCA, page 13-24. IEEE Computer Society, (2008)Papaya: Practical, Private, and Scalable Federated Learning, , , , , , , , , and 4 other author(s). (2021)cite arxiv:2111.04877.Branch-mispredict level parallelism (BLP) for control independence., , , , and . HPCA, page 62-73. IEEE Computer Society, (2008)PaCo: Probability-based path confidence prediction., , , and . HPCA, page 50-61. IEEE Computer Society, (2008)Critical Branches and Lucky Loads in Control-Independence Architectures. University of Illinois Urbana-Champaign, USA, (2009)Exploiting Postdominance for Speculative Parallelization., , , , and . HPCA, page 295-305. IEEE Computer Society, (2007)Joint Federated Learning and Personalization for on-Device ASR., , , , , , and . ASRU, page 1-8. IEEE, (2023)