Density based clustering on indoor kinect location tracking: A new way to exploit active and healthy aging living lab datasets

E. Konstantinidis, P. Bamidis
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引用次数: 13

Abstract

Gait analysis is nowadays considered, as a promising contributor towards early detection of cognitive and physical status deterioration when it comes to elderly people. However, the majority of recent efforts on indoor gait analysis methodologies are limited as they only exploit the average walking speed. Applying density based clustering algorithms on indoor location datasets could accelerate context awareness on gait analysis and consequently augment information quality with regard to underlying gait disorders. This work presents the application of DBScan, a well-known algorithm for knowledge discovery, on indoor Kinect location datasets collected in the Active and Healthy Aging Living Lab in the Lab of Medical Physics of the Aristotle University of Thessaloniki. The aim of the paper is to provide evidence that such an approach could effectively discriminate indoor activity High Density Regions which may subsequently be transferred to datasets originated from seniors' real homes in the light of context aware gait analysis.
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基于密度聚类的室内kinect位置跟踪:一种利用活跃和健康老龄化生活实验室数据集的新方法
步态分析目前被认为是一种有前途的贡献者,有助于早期发现老年人的认知和身体状况恶化。然而,最近对室内步态分析方法的大多数努力都是有限的,因为它们只利用平均步行速度。在室内位置数据集上应用基于密度的聚类算法可以加速步态分析的上下文感知,从而提高有关潜在步态障碍的信息质量。这项工作介绍了DBScan(一种著名的知识发现算法)在塞萨洛尼基亚里士多德大学医学物理实验室活跃和健康老龄化生活实验室收集的室内Kinect位置数据集上的应用。本文的目的是提供证据,证明这种方法可以有效地区分室内活动高密度区域,这些区域随后可以根据上下文感知步态分析转移到来自老年人真实家庭的数据集。
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