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2022 Fiscal Year Final Research Report

Machine Learning on Large Graphs

Research Project

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Project/Area Number 18K11434
Research Category

Grant-in-Aid for Scientific Research (C)

Allocation TypeMulti-year Fund
Section一般
Review Section Basic Section 61030:Intelligent informatics-related
Research InstitutionKyoto University

Principal Investigator

Nguyen Canh Hao  京都大学, 化学研究所, 講師 (90626889)

Project Period (FY) 2018-04-01 – 2023-03-31
Keywordsmachine learning / Graph analysis / bioinformatics
Outline of Final Research Achievements

We have achieved some theoretical and application results on this project. For theoretical, we laid a foundation for learning on hypergraphs, an extension of graphs. We also could apply learning on graphs to complicated applications involving molecules and its interactions with others by leveraging graph information.

Free Research Field

machine learning

Academic Significance and Societal Importance of the Research Achievements

Our achievements help pay ways for further research into more complicated problems in the area of graphs, hypergraphs and application on molecular learning. This may contribute to further research and development in biomedical applications.

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Published: 2024-01-30  

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