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Journal ArticleDOI

Morphable Models for the Analysis and Synthesis of Complex Motion Patterns

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TLDR
This article presents a technique that permits to represent complex motion or action patterns by linear combinations of a small number of prototypical image sequences, and shows how the knowledge about the topology of the pattern space can be exploited during pattern recognition.
Abstract
The linear combination of prototypical views provides a powerful approach for the recognition and the synthesis of images of stationary three-dimensional objects. In this article, we present initial results that demonstrate that similar ideas can be developed for the recognition and synthesis of complex motion patterns. We present a technique that permits to represent complex motion or action patterns by linear combinations of a small number of prototypical image sequences. We demonstrate the applicability of this new approach for the synthesis and analysis of biological motion using simulated and real video data from different locomotion patterns. Our results show that complex motion patterns are embedded in pattern spaces with a defined topological structure, which can be uncovered with our methods. The underlying pattern space seems to have locally, but not globally, the properties of a linear vector space. We show how the knowledge about the topology of the pattern space can be exploited during pattern recognition. Our method may provide a new interesting approach for the analysis and synthesis of video sequences and complex movements.

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Citations
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Machine Recognition of Human Activities: A Survey

TL;DR: A comprehensive survey of efforts in the past couple of decades to address the problems of representation, recognition, and learning of human activities from video and related applications is presented.
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Gaussian Process Dynamical Models for Human Motion

TL;DR: This work marginalize out the model parameters in closed form by using Gaussian process priors for both the dynamical and the observation mappings, which results in a nonparametric model for dynamical systems that accounts for uncertainty in the model.
Journal ArticleDOI

Neural mechanisms for the recognition of biological movements.

TL;DR: A learning-based, feedforward model provides a neurophysiologically plausible and consistent summary of many key experimental results, and is used as a tool for organizing and making sense of the experimental data, despite their growing size and complexity.
Journal ArticleDOI

Decomposing biological motion: A framework for analysis and synthesis of human gait patterns

TL;DR: A framework is developed that transforms biological motion into a representation allowing for analysis using linear methods from statistics and pattern recognition, and reveals that the dynamic part of the motion contains more information about gender than motion-mediated structural cues.

Documentation Mocap Database HDM05

TL;DR: The objective of the motion capture database HDM05 is to supply free motion capture data for research purposes and to provide several MATLAB tools comprising a parser for ASF/AMC and C3D as well as visualization, renaming and cutting tools, which are described in Sect.
References
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Journal ArticleDOI

Pfinder: real-time tracking of the human body

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