2012 Fiscal Year Final Research Report
fictitious data generation using Markov chain Monte Carlo and application to nonlinear information processing
Project/Area Number |
22500217
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Research Category |
Grant-in-Aid for Scientific Research (C)
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Allocation Type | Single-year Grants |
Section | 一般 |
Research Field |
Sensitivity informatics/Soft computing
|
Research Institution | The Institute of Statistical Mathematics |
Principal Investigator |
IBA Yukito 統計数理研究所, モデリング研究系, 准教授 (30213200)
|
Project Period (FY) |
2010 – 2012
|
Keywords | 確率的情報処理 |
Research Abstract |
A Markov chain Monte Carlo solution for “fictitious data generation” is proposed; it is applied to data surrogation and preimage generation. Surrogation of nonlinear time series is successfully treated by multicanonical Monte Carlo. A preimage problem for drug design corresponding to discrimination of structural diagrams is also studied.
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