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2014 Fiscal Year Final Research Report

Generalized N-Dimensional Sparse Coding and Its Application to Computational Anatomy Models

Research Project

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Project/Area Number 24300076
Research Category

Grant-in-Aid for Scientific Research (B)

Allocation TypePartial Multi-year Fund
Section一般
Research Field Perception information processing/Intelligent robotics
Research InstitutionRitsumeikan University

Principal Investigator

CHEN YAN WEI  立命館大学, 情報理工学部, 教授 (60236841)

Co-Investigator(Kenkyū-buntansha) TANAKA T, Hiromi  立命館大学, 情報理工学部, 教授 (10268154)
HAN Xian-Hua  立命館大学, 立命館グローバルイノベーション研究機構, 准教授 (60469195)
SATO Yoshinobu  奈良先端科学技術大学院大学, 情報科学研究科, 教授 (70243219)
FURUKAWA Akira  首都大学東京, 人間健康科学研究科, 教授 (80199421)
MORIKAWA Shigehiro  滋賀医科大学, 医学部, 教授 (60220042)
TATEYAMA Tomoko  立命館大学, 情報理工学部, 助手 (90550153)
Project Period (FY) 2012-04-01 – 2015-03-31
Keywords多重線形 / 腹部複数臓器 / スパース / Low-rank / 局所解析 / ボリューム / 医用画像 / テンプレートマッチング
Outline of Final Research Achievements

Recently, sparse coding is a hot topic for efficient data representation, and has been widely used in computer vision field. In this project, we proposed a generalized ND sparse coding based on multi-linear algebra, for direct analysis of multi-dimensional data without unfolding process. Experiments results on noise reduction demonstrated that the proposed method can achieve better results compared with the conventional sparse coding. We also proposed a framework for local morphological analysis (local statistical shape models) of 3D organs based on sparse and low rank matrix decomposition and applied our proposed method to computer-aided diagnostics of liver cirrhosis. The local abnormal regions can be detected by estimating the sparse components. The norm of the sparse components can be used as a measure for classification of the normal and abnormal livers. The classification accuracy by our proposed method is improved to 95%.

Free Research Field

医用画像

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Published: 2016-06-03  

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