Thursday, September 8, 2022

Graph+AI Breakout: TigerGraph Machine Learning Workbench


Recent research has shown the success of graph neural networks (GNNs) and graph-enhanced machine learning models outperforming conventional machine learning approaches. TigerGraph’s Machine Learning Workbench provides a faster and easier way to develop graph-enhanced machine learning models and GNNs by utilizing the connected data stored in a TigerGraph database. In this session, we'll introduce the TigerGraph Machine Learning Workbench, showing how simple it is to create a GNN model for a fraud transaction detection application.

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