Predict the Best Graph Partitioning Strategy by Using Machine Learning Technology

Jiayi Shen, Fabrice Huet · 2018

In this paper, we explore applying machine learning techniques to find a best partitioner for a given graph. We use some metrics to describe the graph, and use these metrics as the input and the partitioner ranking of a graph execution algorithm as the label to train a model. Our experiment shows KNN and decision tree are good models for this problem.

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