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Register-based implementation of the sparse general matrix-matrix multiplication on GPUs

Junhong Liu, Xin He, Weifeng Liu, Guangming Tan

Abstract

General sparse matrix-matrix multiplication (SpGEMM) is an essential building block in a number of applications. In our work, we fully utilize GPU registers and shared memory to implement an efficient and load balanced SpGEMM in comparison with the existing implementations.

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