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Continuous eight-posture classification for bed-bound patients

机译:卧床病人的连续八姿势分类

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Pressure ulcer is a prevalent complication for bed-bound patients who are not able to shift their body weights over time. Continuous monitoring of patient's postures in the bed can be helpful for caregivers in order to keep track of patient's movements and quality of their repositioning during a day. This information allows hospitals to plan an effective repositioning schedule for each patient. In this paper, a high speed and robust posture classification algorithm is proposed that can be employed in any pervasive patient's monitoring system. First, a whole-body pressure image is recorded using a commercial pressure mat system. Image enhancement is then applied to the raw pressure images and a binary signature for each different posture is constructed. Finally, using a binary pattern matching technique, a given posture can be classified to one of the known posture classes. Our extensive experiments show that the proposed algorithm is able to predict in-bed postures with more than 97% average accuracy.
机译:压疮是卧床不起的患者的普遍并发症,这些患者无法随时间推移而改变体重。连续监测患者在床上的姿势对于护理人员可能很有帮助,以便跟踪患者的运动以及一天中他们的重新安置质量。该信息使医院可以为每位患者规划有效的重新安置时间表。在本文中,提出了一种高速且鲁棒的姿势分类算法,该算法可用于任何普适的患者监护系统。首先,使用商用压力垫系统记录全身压力图像。然后将图像增强应用于原始压力图像,并为每个不同的姿势构建二进制签名。最后,使用二进制模式匹配技术,可以将给定姿势分类为已知姿势类别之一。我们广泛的实验表明,所提出的算法能够以97%以上的平均准确度预测床内姿势。

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