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DAC2022顶会

PANORAMA: divide-and-conquer approach for mapping complex loop kernels on CGRA

Dhananjaya Wijerathne, Zhaoying Li, Thilini Kaushalya Bandara, Tulika Mitra

2022年份
18被引次数
2顶会引用

摘要

CGRAs are well-suited as hardware accelerators due to power efficiency and reconfigurability. However, their potential is limited by the inability of the compiler to map complex loop kernels onto the architectures effectively. We propose PANORAMA, a fast and scalable compiler based on a divide-and-conquer approach to generate quality mapping for complex dataflow graphs (DFG) representing loop bodies onto larger CGRAs. PANORAMA improves the throughput of the mapped loops by up to 2.6x with 8.7x faster compilation time compared to the state-of-the-art techniques.

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