3D pose estimation for robotic applications based on a multi-camera hybrid visual system

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Abstract

An algorithm for the estimation of the position and orientation of a moving object using a hybrid eye-in-hand/eye-to-hand multi-camera system is presented. Based on the extended Kalman filter, this approach exploits the data provided by all the cameras without "a priori" discrimination, allowing real-time estimation. The proposed formulation can be used with different kinds of image features and different representations of the object orientation. A simulation case study is reported to test the feasibility and the effectiveness of the proposed technique. ©2006 IEEE.

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Lippiello, V., Siciliano, B., & Villani, L. (2006). 3D pose estimation for robotic applications based on a multi-camera hybrid visual system. In Proceedings - IEEE International Conference on Robotics and Automation (Vol. 2006, pp. 2732–2737). https://doi.org/10.1109/ROBOT.2006.1642114

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