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GAS: A scheduling primitive dependency analysis-based cost model for tensor program optimization

delete2026-01-21
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PRE
AI
Y
Yonghua Hu
A
Anxing Xie
Y
Yaohua Wang
Z
Zhe Li
Z
Zenghua Cheng
J
Junyang Tang
DOI:10.1016/j.sysarc.2026.103721delete
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摘要

摘要

En 中文
Automatically generating high-performance tensor programs has become a promising approach for deploying deep neural networks. A key challenge lies in designing an effective cost model to navigate the vast scheduling search space. Existing approaches typically fall into two categories, each with limitations: offline learning cost models rely on large pre-collected datasets, which may be incomplete or device-specific, and online learning cost models depend on handcrafted features, requiring substantial manual effort and expertise.

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Journal of Systems Architecture 封面图
Journal of Systems Architecture
IF:
4.1
论文数:
3.0K
被引数:
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national university of defense technology
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论文数: 1.5K
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Hunan University of Science and Technology
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1.3K
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