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Automated VSS-based Burn Scar Assessment using Combined Texture and Color Features of Digital Images in Error-Correcting Output Coding

机译:在错误校正输出编码中使用数字图像的纹理和颜色特征相结合的基于VSS的自动烧伤疤痕评估

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摘要

Assessment of burn scars is an important study in both medical research and clinical settings because it can help determine response to burn treatment and plan optimal surgical procedures. Scar rating has been performed using both subjective observations and objective measuring devices. However, there is still a lack of consensus with respect to the accuracy, reproducibility, and feasibility of the current methods. Computerized scar assessment appears to have potential for meeting such requirements but has been rarely found in literature. In this paper an image analysis and pattern classification approach for automating burn scar rating based on the Vancouver Scar Scale (VSS) was developed. Using the image data of pediatric patients, a rating accuracy of 85% was obtained, while 92% and 98% were achieved for the tolerances of one VSS score and two VSS scores, respectively. The experimental results suggest that the proposed approach is very promising as a tool for clinical burn scar assessment that is reproducible and cost-effective.
机译:烧伤疤痕的评估在医学研究和临床环境中都是一项重要的研究,因为它可以帮助确定对烧伤治疗的反应并计划最佳的手术程序。已经使用主观观察和客观测量设备来执行疤痕评级。但是,在当前方法的准确性,可重复性和可行性方面仍缺乏共识。计算机化的疤痕评估似乎具有满足此类要求的潜力,但在文献中很少发现。本文提出了一种基于温哥华疤痕量表(VSS)的自动烧伤疤痕评级的图像分析和模式分类方法。使用儿科患者的图像数据,获得了85%的评分准确度,而一个VSS评分和两个VSS评分的公差分别达到了92%和98%。实验结果表明,所提出的方法作为可重现且具有成本效益的临床烧伤疤痕评估工具非常有前途。

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