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Graph Analytics vs Graph Machine Learning | Jörg Schad | Connected Data World 2021 

Connected Data
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Graph Analytics vs Graph Machine Learning
Graph Analytics has long demonstrated that it solves real-world problems including Fraud, Ranking, Recommendation, text summarization and other NLP tasks.
More recently, Graph Machine Learning applied directly on graphs using graph algorithms and machine learning, has been demonstrating significant advantages in solving the same problems as graph analytics as well as problems that are impractical to solve using graph analytics.
Graph Machine Learning does this by training statistical models on the graph resulting in Graph Embeddings and Graph Neural Networks that are used to complex problems in a different way.
In this talk, we will compare and contrast these two approaches (spoiler: often complexity vs precision) in real-world scenarios. What factors should you consider when choosing one over the other and when do you even have a choice?
Join this talk to learn about exciting new developments in Graph ML, as the graph techniques on which they are based.
A talk by Jörg Schad, CTO, ArangoDB
SPEAKER EXPERTISE
Jörg Schad is the CTO at ArangoDB. In a previous life, he has worked on or built machine learning pipelines in healthcare, distributed systems at Mesosphere, and in-memory databases. He received his Ph.D. for research around distributed databases and data analytics. He’s a frequent speaker at meetups, international conferences, and lecture halls. ---
Connected Data London 2024 has been announced!
December 11-13, etc Venues St. Paul’s, City of London
If you liked this video, check #CDL24 for more Presentations, Keynotes, Masterclasses, and Workshops on cutting-edge topics from industry leaders and innovators:
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6 авг 2024

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