41 research outputs found

    Pose Estimation and Tracking using Multivariate Regression

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    This paper presents an extension of the relevance vector machine (RVM) algorithm to multivariate regression. This allows the application to the task of estimating the pose of an articulated object from a single camera. RVMs are used to learn a one-to-many mapping from image features to state space, thereby being able to handle pose ambiguity

    Likelihood models for template matching using the PDF projection theorem

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    Hand pose estimation using hierarchical detection

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    Filtering using a tree-based estimator

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