A framework for evaluating motion segmentation algorithms

Christian R. G. Dreher, Nicklas Kulp, Christian Mandery, Mirko Wächter, T. Asfour
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引用次数: 4

Abstract

There have been many proposals for algorithms segmenting human whole-body motion in the literature. However, the wide range of use cases, datasets, and quality measures that were used for the evaluation render the comparison of algorithms challenging. In this paper, we introduce a framework that puts motion segmentation algorithms on a unified testing ground and provides a possibility to allow comparing them. The testing ground features both a set of quality measures known from the literature and a novel approach tailored to the evaluation of motion segmentation algorithms, termed Integrated Kernel approach. Datasets of motion recordings, provided with a ground truth, are included as well. They are labelled in a new way, which hierarchically organises the ground truth, to cover different use cases that segmentation algorithms can possess. The framework and datasets are publicly available and are intended to represent a service for the community regarding the comparison and evaluation of existing and new motion segmentation algorithms.
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一个评估运动分割算法的框架
文献中已经提出了许多分割人体全身运动的算法。然而,广泛的用例、数据集和用于评估的质量度量使得算法的比较具有挑战性。在本文中,我们引入了一个框架,将运动分割算法放在一个统一的测试平台上,并提供了一种允许比较它们的可能性。测试场地的特点是一套从文献中已知的质量措施和一种专门用于评估运动分割算法的新方法,称为集成核方法。运动记录的数据集,提供了一个基本的事实,也包括在内。它们以一种新的方式被标记,这种方式分层地组织基础事实,以涵盖分割算法可以拥有的不同用例。该框架和数据集是公开的,旨在为社区提供关于现有和新的运动分割算法的比较和评估的服务。
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