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2016 Fiscal Year Final Research Report

New developments of statistical data analysis with algebraic topology

Research Project

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Project/Area Number 26540016
Research Category

Grant-in-Aid for Challenging Exploratory Research

Allocation TypeMulti-year Fund
Research Field Statistical science
Research InstitutionThe Institute of Statistical Mathematics

Principal Investigator

Fukumizu Kenji  統計数理研究所, 数理・推論研究系, 教授 (60311362)

Co-Investigator(Renkei-kenkyūsha) MATSUE Kaname  九州大学, マス・フォア・インダストリ研究所, 助教 (70610046)
Project Period (FY) 2014-04-01 – 2017-03-31
Keywords多変量解析 / 代数的位相幾何 / 多様体学習
Outline of Final Research Achievements

(1) Kernel methods for vectorizing persitence diagrams has been proposed, and they have been applied to detecting the phase transition temperature between glass and liquid. (2) A framework for phyogeny analysis has been proposed based on manifold learning and gene clustering. (3) The method of Euler number has been applied to derive reliability intervals of regression problems as well as the distribution of maximum eigenvalue of random matrices.

Free Research Field

統計的機械学習

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Published: 2018-03-22  

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