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高光谱成像在压疮面积测量中的应用。

The Application of Hyperspectral Imaging to the Measurement of Pressure Injury Area.

机构信息

Department of Nursing, Hungkuang University, Taichung 433304, Taiwan.

出版信息

Int J Environ Res Public Health. 2023 Feb 6;20(4):2851. doi: 10.3390/ijerph20042851.

Abstract

Wound size measurement is an important indicator of wound healing. Nurses measure wound size in terms of length × width in wound healing assessment, but it is easy to overestimate the extent of the wound due to irregularities around it. Using hyperspectral imaging (HIS) to measure the area of a pressure injury could provide more accurate data than manual measurement, ensure that the same tool is used for standardized assessment of wounds, and reduce the measurement time. This study was a pilot cross-sectional study, and a total of 30 patients with coccyx sacral pressure injuries were recruited to the rehabilitation ward after approval by the human subjects research committee. We used hyperspectral images to collect pressure injury images and machine learning (k-means) to automatically classify wound areas in combination with the length × width rule (LW rule) and image morphology algorithm for wound judgment and area calculation. The results calculated from the data were compared with the calculations made by the nursing staff using the length × width rule. The use of hyperspectral images, machine learning, the length × width rule (LW rule), and an image morphology algorithm to calculate the wound area yielded more accurate measurements than did nurses, effectively reduced the chance of human error, reduced the measurement time, and produced real-time data. HIS can be used by nursing staff to assess wounds with a standardized approach so as to ensure that proper wound care can be provided.

摘要

伤口大小测量是评估伤口愈合的重要指标。护士在评估伤口愈合时,通常会以长度×宽度来测量伤口的大小,但由于伤口周围的不规则形状,容易导致过度估计伤口的范围。使用高光谱成像(HIS)来测量压力性损伤的面积,可能比手动测量提供更准确的数据,确保使用相同的工具进行标准化的伤口评估,并减少测量时间。本研究为一项前瞻性的横断面研究,共纳入 30 例骶尾部压力性损伤患者,在获得人体研究委员会批准后,在康复病房进行。我们使用高光谱图像采集压力性损伤图像,并结合长度×宽度规则(LW 规则)和图像形态学算法,利用机器学习(k-均值)自动对伤口区域进行分类,进行伤口判断和面积计算。将数据计算的结果与护理人员使用长度×宽度规则(LW 规则)计算的结果进行比较。使用高光谱图像、机器学习、长度×宽度规则(LW 规则)和图像形态学算法计算伤口面积,比护理人员的测量更准确,有效减少了人为错误的机会,缩短了测量时间,提供了实时数据。HIS 可以帮助护理人员以标准化的方式评估伤口,以确保提供适当的伤口护理。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f3d4/9956940/57848808bcb3/ijerph-20-02851-g001.jpg

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