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A Retinex-based total variation approach for image segmentation and bias correction

机译:基于Retinex的总变化方法进行图像分割和偏差校正

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摘要

Image segmentation methods usually suffer from intensity inhomogeneity problem caused by many factors such as spatial variations in illumination (or bias fields of imaging devices). In order to address this problem, this paper proposes a Retinex-based variational model for image segmentation and bias correction. According to Retinex theory, the input inhomogeneous image can be decoupled into illumination bias and reflectance parts. The main contribution of this paper is to consider piecewise constant of the reflectance, and thereby introduce the total variation term in the proposed model for correcting and segmenting the input image. This is different from the existing model in which the spatial smoothness of the illumination bias is employed only. The existence of the minimizers to the variational model is established. Furthermore, we develop an efficient algorithm to solve the model numerically by using the alternating minimization method. Our experimental results are reported to demonstrate the effectiveness of the proposed method, and its performance is competitive with that of the other testing methods.
机译:图像分割方法通常遭受由许多因素引起的强度不均匀性问题,例如照明的空间变化(或成像装置的偏置场)。为了解决这个问题,本文提出了一种基于Retinex的变分模型,用于图像分割和偏差校正。根据Retinex理论,输入的不均匀图像可以解耦为照明偏置和反射率部分。本文的主要贡献是考虑反射率的分段常数,从而在所提出的模型中引入总变化项以校正和分割输入图像。这不同于仅采用照明偏差的空间平滑度的现有模型。建立了最小化变量模型的存在性。此外,我们开发了一种有效的算法,通过使用交替最小化方法对模型进行数值求解。据报道,我们的实验结果证明了该方法的有效性,其性能与其他测试方法相比具有竞争优势。

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