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SVM-based system for point-to-point hand movement

Jun won Lee, Sung Yul Shin, Sang Hyup Lee, Young mok Yun, Seung‐Jong Kim, Chang Hwan Kim

Year
2012
Citations
2

Abstract

A system for humanoid robot arm movement concerns about generating a human-like point-to-point (p2p) trajectory. For more than a decade, numerous systems have been devised and many of them were based on complex dynamical systems. In this paper, we introduce a simpler system, integrating support vector machine (SVM) learning model, which can achieve same p2p objective. In our experiment, we compare our system with another version where SVM model component is absent and show that in many cases, our proposed system outperforms and effective for all experiments.

Keywords

Support vector machineComputer scienceTrajectoryHumanoid robotPoint (geometry)Component (thermodynamics)Artificial intelligenceMovement (music)RobotMulti point

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