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一种用于检测腹部手术后步态障碍的耳戴式传感器。

An ear-worn sensor for the detection of gait impairment after abdominal surgery.

作者信息

Atallah Louis, Aziz Omer, Gray Edward, Lo Benny, Yang Guang-Zhong

机构信息

Imperial College London, London, UK.

出版信息

Surg Innov. 2013 Feb;20(1):86-94. doi: 10.1177/1553350612445639. Epub 2012 May 28.

Abstract

Surgery to the trunk often results in a change of gait, most pronounced during walking. This change is usually transient, often as a result of wound pain, and returns to normal as the patient recovers. Quantifying and monitoring gait impairment therefore represents a novel means of functional postoperative home recovery follow-up. Until now, this type of assessment could only be made in a gait lab, which is both expensive and labor intensive to administer on a large scale. The objective of this work is to validate the use of an ear-worn activity recognition (e-AR) sensor for quantification of gait impairment after abdominal wall and perianal surgery. The e-AR sensor was used on 2 comparative simulated data sets (N = 32) of truncal impairment to observe walking patterns. The sensor was also used to observe the walking patterns of preoperative and postoperative surgical patients who had undergone abdominal wall (n = 5) and perianal surgery (n = 5). Methods for multiresolution feature extraction, selection, and classification are investigated using the raw ear-sensor data. Results show that the method demonstrates a good separation between impaired and nonimpaired classes for both simulated and real patient data sets. This indicates that the e-AR sensor may be used as a tool for the pervasive assessment of postoperative gait impairment, as part of functional recovery monitoring, in patients at their own homes.

摘要

躯干手术常常会导致步态改变,在行走时最为明显。这种改变通常是暂时的,往往是伤口疼痛所致,随着患者康复会恢复正常。因此,量化和监测步态损伤代表了一种新型的术后家庭功能恢复随访手段。到目前为止,这类评估只能在步态实验室进行,大规模开展既昂贵又耗费人力。这项工作的目的是验证使用耳部佩戴的活动识别(e-AR)传感器来量化腹壁和肛周手术后的步态损伤。e-AR传感器被用于两个关于躯干损伤的比较模拟数据集(N = 32)以观察行走模式。该传感器还被用于观察接受腹壁手术(n = 5)和肛周手术(n = 5)的术前和术后患者的行走模式。利用耳部传感器原始数据研究了多分辨率特征提取、选择和分类方法。结果表明,该方法在模拟和真实患者数据集中均能很好地区分损伤和未损伤类别。这表明,e-AR传感器可作为一种工具,用于在患者家中对术后步态损伤进行普遍评估,作为功能恢复监测的一部分。

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