Legate Sparse: Distributed Sparse Computing in Python
Rohan Yadav, Wonchan Lee, Melih Elibol, Manolis Papadakis, Taylor Lee Patti, Michael Garland, Alex Aiken, Fredrik Kjolstad, Michael Bauer
摘要
The sparse module of the popular SciPy Python library is widely used across applications in scientific computing, data analysis and machine learning. The standard implementation of SciPy is restricted to a single CPU and cannot take advantage of modern distributed and accelerated computing resources. We introduce Legate Sparse, a system that transparently distributes and accelerates unmodified sparse matrix-based SciPy programs across clusters of CPUs and GPUs, and composes with cuNumeric, a distributed NumPy library. Legate Sparse uses a combination of static and dynamic techniques to efficiently compose independently written sparse and dense array programming libraries, providing a unified Python interface for distributed sparse and dense array computations. We show that Legate Sparse is competitive with single-GPU libraries like CuPy and achieves 65% of the performance of PETSc on up to 1280 CPU cores and 192 GPUs of the Summit supercomputer, while offering the productivity benefits of idiomatic SciPy and NumPy.
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- Composing Distributed Computations Through Task and Kernel FusionRohan Yadav, Shiv Sundram, Wonchan Lee, Michael Garland 等ASPLOS 2025
- Automatic Tracing in Task-Based Runtime SystemsRohan Yadav, Michael Bauer, David Broman, Michael Garland 等ASPLOS 2025
它引用的顶会 Paper4
- Productivity, portability, performance: data-centric PythonAlexandros Nikolaos Ziogas, Timo Schneider, Tal Ben-Nun, Alexandru Calotoiu 等SC 2021 · 被引用 32 次
- DISTAL: the distributed tensor algebra compilerRohan Yadav, Alex Aiken, Fredrik KjolstadPLDI 2022 · 被引用 29 次
- Mosaic: An Interoperable Compiler for Tensor AlgebraManya Bansal, Olivia Hsu, Kunle Olukotun, Fredrik KjolstadPLDI 2023 · 被引用 16 次
- SpDISTAL: Compiling Distributed Sparse Tensor ComputationsRohan Yadav, Alex Aiken, Fredrik KjolstadSC 2022 · 被引用 7 次
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