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首页> 外文期刊>Journal of Imaging >Investigation of the Performance of Hyperspectral Imaging by Principal Component Analysis in the Prediction of Healing of Diabetic Foot Ulcers
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Investigation of the Performance of Hyperspectral Imaging by Principal Component Analysis in the Prediction of Healing of Diabetic Foot Ulcers

机译:基于主成分分析的高光谱成像在糖尿病足溃疡愈合预测中的性能研究

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Diabetic foot ulcers are a major complication of diabetes and present a considerable burden for both patients and health care providers. As healing often takes many months, a method of determining which ulcers would be most likely to heal would be of great value in identifying patients who require further intervention at an early stage. Hyperspectral imaging (HSI) is a tool that has the potential to meet this clinical need. Due to the different absorption spectra of oxy- and deoxyhemoglobin, in biomedical HSI the majority of research has utilized reflectance spectra to estimate oxygen saturation (SpO 2 ) values from peripheral tissue. In an earlier study, HSI of 43 patients with diabetic foot ulcers at the time of presentation revealed that ulcer healing by 12 weeks could be predicted by the assessment of SpO 2 calculated from these images. Principal component analysis (PCA) is an alternative approach to analyzing HSI data. Although frequently applied in other fields, mapping of SpO 2 is more common in biomedical HSI. It is therefore valuable to compare the performance of PCA with SpO 2 measurement in the prediction of wound healing. Data from the same study group have now been used to examine the relationship between ulcer healing by 12 weeks when the results of the original HSI are analyzed using PCA. At the optimum thresholds, the sensitivity of prediction of healing by 12 weeks using PCA (87.5%) was greater than that of SpO 2 (50.0%), with both approaches showing equal specificity (88.2%). The positive predictive value of PCA and oxygen saturation analysis was 0.91 and 0.86, respectively, and a comparison by receiver operating characteristic curve analysis revealed an area under the curve of 0.88 for PCA compared with 0.66 using SpO 2 analysis. It is concluded that HSI may be a better predictor of healing when analyzed by PCA than by SpO 2 .
机译:糖尿病足溃疡是糖尿病的主要并发症,并且给患者和卫生保健提供者带来了相当大的负担。由于愈合通常需要数月的时间,因此确定哪些溃疡最有可能治愈的方法对于在早期识别需要进一步干预的患者具有重要价值。高光谱成像(HSI)是一种有潜力满足这一临床需求的工具。由于氧合和脱氧血红蛋白的吸收光谱不同,在生物医学HSI中,大多数研究已利用反射光谱来估计周围组织的氧饱和度(SpO 2)值。在较早的研究中,在报告时对43例糖尿病足溃疡患者的HSI显示,通过根据这些图像计算得出的SpO 2评估可以预测到12周溃疡愈合。主成分分析(PCA)是分析HSI数据的另一种方法。尽管在其他领域中经常使用SpO 2的映射,但在生物医学HSI中更为常见。因此,将PCA与SpO 2测量的性能在预测伤口愈合中进行比较很有价值。当使用PCA分析原始HSI的结果时,来自同一研究组的数据现在已用于检查溃疡愈合至12周之间的关系。在最佳阈值下,使用PCA预测12周愈合的敏感性(87.5%)大于SpO 2(50.0%),两种方法均显示相同的特异性(88.2%)。 PCA和氧饱和度分析的阳性预测值分别为0.91和0.86,通过接收器工作特性曲线分析的比较显示,PCA曲线下的面积为0.88,而SpO 2分析为0.66。结论是,当用PCA分析时,与SpO 2相比,HSI可能是更好的治愈预测指标。

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