Bliss: auto-tuning complex applications using a pool of diverse lightweight learning models
Rohan Basu Roy, Tirthak Patel, Vijay Gadepally, Devesh Tiwari
2021年份
41被引次数
7顶会引用
摘要
As parallel applications become more complex, auto-tuning becomes more desirable, challenging, and time-consuming. We propose, Bliss, a novel solution for auto-tuning parallel applications without requiring apriori information about applications, domain-specific knowledge, or instrumentation. Bliss demonstrates how to leverage a pool of Bayesian Optimization models to find the near-optimal parameter setting 1.64× faster than the state-of-the-art approaches.
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引用它的顶会 Paper7
- CAFQA: A Classical Simulation Bootstrap for Variational Quantum AlgorithmsGokul Subramanian Ravi, Pranav Gokhale, Yi Ding, William M. Kirby 等ASPLOS 2023 · 被引用 39 次
- BaCO: A Fast and Portable Bayesian Compiler Optimization FrameworkErik Orm Hellsten, Artur L. F. Souza, Johannes Lenfers, Rubens Lacouture 等ASPLOS 2023 · 被引用 22 次
- RIBBON: cost-effective and qos-aware deep learning model inference using a diverse pool of cloud computing instancesBaolin Li, Rohan Basu Roy, Tirthak Patel, Vijay Gadepally 等SC 2021 · 被引用 16 次
- Scalable Tuning of (OpenMP) GPU Applications via Kernel Record and ReplayKonstantinos Parasyris, Giorgis Georgakoudis, Esteban Rangel, Ignacio Laguna 等SC 2023 · 被引用 15 次
- Performance Optimization using Multimodal Modeling and Heterogeneous GNNAkash Dutta, Jordi Alcaraz, Ali TehraniJamsaz, Eduardo César 等HPDC 2023 · 被引用 15 次
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