ParaGraphE: A Library for Parallel Knowledge Graph Embedding

March 16, 2017 Β· Entered Twilight Β· πŸ› arXiv.org

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Authors Xiao-Fan Niu, Wu-Jun Li arXiv ID 1703.05614 Category cs.AI: Artificial Intelligence Citations 6 Venue arXiv.org Repository https://github.com/LIBBLE/LIBBLE-MultiThread/tree/master/ParaGraphE ⭐ 52 Last Checked 1 month ago
Abstract
Knowledge graph embedding aims at translating the knowledge graph into numerical representations by transforming the entities and relations into continuous low-dimensional vectors. Recently, many methods [1, 5, 3, 2, 6] have been proposed to deal with this problem, but existing single-thread implementations of them are time-consuming for large-scale knowledge graphs. Here, we design a unified parallel framework to parallelize these methods, which achieves a significant time reduction without influencing the accuracy. We name our framework as ParaGraphE, which provides a library for parallel knowledge graph embedding. The source code can be downloaded from https://github.com/LIBBLE/LIBBLE-MultiThread/tree/master/ParaGraphE .
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