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Tensor Decomposition for Colour Image Segmentation of Burn Wounds

机译:烧伤伤口彩色图像分割的张量分解

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摘要

Research in burns has been a continuing demand over the past few decades, and important advancements are still needed to facilitate more effective patient stabilization and reduce mortality rate. Burn wound assessment, which is an important task for surgical management, largely depends on the accuracy of burn area and burn depth estimates. Automated quantification of these burn parameters plays an essential role for reducing these estimate errors conventionally carried out by clinicians. The task for automated burn area calculation is known as image segmentation. In this paper, a new segmentation method for burn wound images is proposed. The proposed methods utilizes a method of tensor decomposition of colour images, based on which effective texture features can be extracted for classification. Experimental results showed that the proposed method outperforms other methods not only in terms of segmentation accuracy but also computational speed.
机译:在过去的几十年中,对烧伤的研究一直是持续的需求,并且仍需要重要的进展以促进更有效的患者稳定和降低死亡率。烧伤伤口评估是外科治疗的重要任务,很大程度上取决于烧伤面积的准确性和烧伤深度的估计。这些烧伤参数的自动量化对于减少临床医生通常执行的这些估计误差起着至关重要的作用。自动燃烧面积计算的任务称为图像分割。本文提出了一种新的烧伤创面图像分割方法。所提出的方法利用了彩色图像的张量分解的方法,基于该方法可以提取有效的纹理特征用于分类。实验结果表明,该方法不仅在分割精度上,而且在计算速度上均优于其他方法。

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