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Increasing pose estimation performance using multi-cue integration

Fredrik Vikstén, Robert Söderberg, Klas Nordberg, Cbu Perwass

Year
2006
Citations
25

Abstract

We have developed a system which integrates the information output from several pose estimation algorithms and from several views of the scene. It is tested in a real setup with a robotic manipulator. It is shown that integrating pose estimates from several algorithms increases the overall performance of the pose estimation accuracy as well as the robustness as compared to using only a single algorithm. It is shown that increased robustness can be achieved by using pose estimation algorithms based on complementary features, so called algorithmic multi-cue integration (AMC). Furthermore it is also shown that increased accuracy can be achieved by integrating pose estimation results from different views of the scene, so-called temporal multi-cue integration (TMC). Temporal multi-cue integration is the most interesting aspect of this paper

Keywords

Robustness (evolution)PoseComputer scienceArtificial intelligenceComputer visionRobot

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