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Spectral-spatial classification combined with diffusion theory based inverse modeling of hyperspectral images

机译:光谱空间分类与扩散理论相结合的高光谱图像逆建模

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Hyperspectral imagery opens a new perspective for biomedical diagnostics and tissue characterization. High spectral resolution can give insight into optical properties of the skin tissue. However, at the same time the amount of collected data represents a challenge when it comes to decomposition into clusters and extraction of useful diagnostic information. In this study spectral-spatial classification and inverse diffusion modeling were employed to hyperspectral images obtained from a porcine burn model using a hyperspectral push-broom camera. The implemented method takes advantage of spatial and spectral information simultaneously, and provides information about the average optical properties within each cluster. The implemented algorithm allows mapping spectral and spatial heterogeneity of the burn injury as well as dynamic changes of spectral properties within the burn area. The combination of statistical and physics informed tools allowed for initial separation of different burn wounds and further detailed characterization of the injuries in short post-injury time.
机译:高光谱图像为生物医学诊断和组织表征开辟了新的视角。高光谱分辨率可以深入了解皮肤组织的光学特性。但是,与此同时,要分解成簇并提取有用的诊断信息,收集到的数据量也是一个挑战。在这项研究中,光谱空间分类和逆扩散模型被用于使用高光谱推扫相机从猪烧伤模型获得的高光谱图像。所实施的方法同时利用空间和光谱信息,并提供有关每个群集内平均光学特性的信息。所实施的算法允许映射烧伤的光谱和空间异质性以及烧伤区域内光谱特性的动态变化。统计和物理信息工具的组合可实现不同烧伤伤口的初步分离,并在伤后较短时间内进一步详细描述伤痕。

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