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Human motion database with a binary tree and node transition graphs

delete2010-09-02
delete18
PRE
AI
K
Katsu Yamane *
Y
Yoshifumi Yamaguchi
Y
Yoshihiko Nakamura
DOI:10.1007/s10514-010-9206-zdelete
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Abstract

Abstract

En 中文
Database of human motion has been widely used for recognizing human motion and synthesizing humanoid motions. In this paper, we propose a data structure for storing and extracting human motion data and demonstrate that the database can be applied to the recognition and motion synthesis problems in robotics. We develop an efficient method for building a human motion database from a collection of continuous, multi-dimensional motion clips. The database consists of a binary tree representing the hierarchical clustering of the states observed in the motion clips, as well as node transition graphs representing the possible transitions among the nodes in the binary tree. Using databases constructed from real human motion data, we demonstrate that the proposed data structure can be used for human motion recognition, state estimation and prediction, and robot motion planning.
Keywords:
Motion database
Binary tree
Human motion recognition
Humanoid motion planning

Journal

Autonomous Robots cover
Autonomous Robots
IF:
4.3
Papers:
1.7K
Citations:
5.0K

Organization

U
University of Tokyo
Scholars:
7.1W
Papers: 6.5W
Citations: 2.2K