2022
DOI: 10.48550/arxiv.2207.13848
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Predicting the Output Structure of Sparse Matrix Multiplication with Sampled Compression Ratio

Abstract: Sparse general matrix multiplication (SpGEMM) is a fundamental building block in numerous scientific applications. One critical task of SpGEMM is to compute or predict the structure of the output matrix (i.e., the number of nonzero elements per output row) for efficient memory allocation and load balance, which impact the overall performance of SpGEMM. Existing work either precisely calculates the output structure or adopts upper-bound or sampling-based methods to predict the output structure. However, these m… Show more

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