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Reaction-diffusion based level set method with local entropy thresholding for melasma image segmentation

机译:基于反应扩散的局部熵阈值水平集法用于黄褐斑图像分割

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This paper proposes a new method for melasma pigmentary area segmentation utilizing re action-diffusion based level set model (RDLSM) together with local entropy thresholding. In the adopted level set model, a diffusion term is used to regularize the level set function while a reaction term with anticipated sign property is used to force the zero level set towards desired locations. Then local entropy thresholding is applied to address the over-segmentation issue of RDLSM and to extract desired boundaries with higher overall local entropy. As a result, the melasma pigmentary areas and the normal skin areas can be better identified. Experimental results show that the proposed method performs well for melasma image segmentation, especially for cases with severe non-uniform illumination distribution.
机译:本文提出了一种基于反应扩散的水平集模型(RDLSM)结合局部熵阈值分割黄褐斑区域的新方法。在采用的水平集模型中,使用扩散项对水平集函数进行正则化,同时使用具有预期符号特性的反应项将零水平集强制推向所需位置。然后,将局部熵阈值化应用于解决RDLSM的过度分割问题,并提取具有较高整体局部熵的所需边界。结果,可以更好地识别黄褐斑色素区域和正常皮肤区域。实验结果表明,该方法对黄褐斑图像分割效果良好,尤其是在光照分布严重不均匀的情况下。

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