Criticality Driven Fetch
Aniket Deshmukh, Yale N. Patt
摘要
Modern OoO cores achieve high levels of performance using large instruction windows. Scaling the window size improves performance by making visible more of the parallelism present in programs. However, this leads to an exponential increase in area and power. We specify Criticality Driven Fetch (CDF), a new execution paradigm that preferentially fetches, allocates, and executes instructions on the critical path of the program. By skipping over non-critical instructions, critical instructions in the ROB can span a sequential instruction window larger than the size of the ROB. This increases the amount of parallelism that can be extracted from critical instructions, thereby improving performance.
In our implementation, CDF improves performance by (a) increasing the MLP for independent loads executing concurrently, (b) fetching critical path loads past hard-to-predict branches (by resolving them earlier), and (c) by initiating last level cache misses that cannot be parallelized earlier. Accelerating critical loads using CDF achieves a 6.1% IPC improvement over a baseline OoO core with prefetching. Compared to Precise Runahead, the prior state of the art work on accelerating last level cache misses on the core, we provide better performance and reduce memory traffic and energy consumption by 4.0% and 7.2% respectively.
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引用它的顶会 Paper6
- CRISP: critical slice prefetchingHeiner Litz, Grant Ayers, Parthasarathy RanganathanASPLOS 2022 · 被引用 33 次
- From Optimal to Practical: Efficient Micro-op Cache Replacement Policies for Data Center ApplicationsKan Zhu, Yilong Zhao, Yufei Gao, Peter Braun 等HPCA 2025 · 被引用 3 次
- Timely, Efficient, and Accurate Branch PrecomputationAniket Deshmukh, Lingzhe Chester Cai, Yale N. PattMICRO 2024 · 被引用 3 次
- Alternate Path FetchAniket Deshmukh, Lingzhe Chester Cai, Yale N. PattISCA 2024 · 被引用 2 次
- Enabling Ahead Prediction with Practical Energy ConstraintsLingzhe Chester Cai, Aniket Deshmukh, Yale N. PattISCA 2025 · 被引用 2 次
它引用的顶会 Paper4
- Spectre Attacks: Exploiting Speculative ExecutionPaul Kocher, Jann Horn, Anders Fogh, Daniel Genkin 等S&P 2019 · 被引用 2,435 次
- Meltdown: Reading Kernel Memory from User SpaceMoritz Lipp, Michael Schwarz, Daniel Gruss, Thomas Prescher 等USENIX Security 2018 · 被引用 1,456 次
- Precise Runahead ExecutionAjeya Naithani, Josué Feliu, Almutaz Adileh, Lieven EeckhoutHPCA 2020 · 被引用 32 次
- Slipstream Processors Revisited: Exploiting Branch SetsVinesh Srinivasan, Rangeen Basu Roy Chowdhury, Eric RotenbergISCA 2020 · 被引用 12 次
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