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Position and orientation tracking in a ubiquitous monitoring system for Parkinson disease patients with freezing of gait symptom

机译:位置和方向跟踪在普遍存在的帕金森病患者监测系统中,可以缓解步态症状

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摘要

Background: Freezing of gait (FoG) is one of the most disturbing and least understood symptoms in Parkinson disease (PD). Although the majority of existing assistive systems assume accurate detections of FoG episodes, the detection itself is still an open problem. The specificity of FoG is its dependency on the context of a patient, such as the current location or activity. Knowing the patient's context might improve FoG detection. One of the main technical challenges that needs to be solved in order to start using contextual information for FoG detection is accurate estimation of the patient's position and orientation toward key elements of his or her indoor environment. Objective: The objectives of this paper are to (1) present the concept of the monitoring system, based on wearable and ambient sensors, which is designed to detect FoG using the spatial context of the user, (2) establish a set of requirements for the application of position and orientation tracking in FoG detection, (3) evaluate the accuracy of the position estimation for the tracking system, and (4) evaluate two different methods for human orientation estimation. Methods: We developed a prototype system to localize humans and track their orientation, as an important prerequisite for a context-based FoG monitoring system. To setup the system for experiments with real PD patients, the accuracy of the position and orientation tracking was assessed under laboratory conditions in 12 participants. To collect the data, the participants were asked to wear a smartphone, with and without known orientation around the waist, while walking over a predefined path in the marked area captured by two Kinect cameras with non-overlapping fields of view. Results: We used the root mean square error (RMSE) as the main performance measure. The vision based position tracking algorithm achieved RMSE = 0.16 m in position estimation for upright standing people. ..
机译:背景:步态冻结(FoG)是帕金森病(PD)中最令人困扰和了解最少的症状之一。尽管大多数现有的辅助系统都假定可以准确检测FoG发作,但是检测本身仍然是一个未解决的问题。 FoG的特异性在于其对患者背景的依赖,例如当前位置或活动。了解患者的背景可能会改善FoG检测。为了开始使用上下文信息进行FoG检测,需要解决的主要技术挑战之一是准确估计患者朝向其室内环境的关键元素的位置和方向。目标:本文的目的是(1)提出基于可穿戴和环境传感器的监控系统的概念,该系统旨在利用用户的空间环境检测FoG,(2)建立一套针对位置和方向跟踪在FoG检测中的应用;(3)评估跟踪系统的位置估计的准确性;(4)评估两种不同的人类方向估计方法。方法:我们开发了一个原型系统来定位人类并跟踪他们的方向,这是基于上下文的FoG监视系统的重要前提。为了设置用于实际PD患者的实验系统,在实验室条件下评估了12位参与者的位置和方向跟踪的准确性。为了收集数据,要求参与者佩戴智能手机,并在腰部有和没有已知方向的情况下,在由两个具有非重叠视野的Kinect相机捕获的标记区域中的预定路径上行走。结果:我们使用均方根误差(RMSE)作为主要性能指标。基于视觉的位置跟踪算法在直立站立的人的位置估计中实现了RMSE = 0.16 m。 ..

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