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Color Correction Using Root-Polynomial Regression

机译:使用根多项式回归进行色彩校正

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Cameras record three color responses () which are device dependent. Camera coordinates are mapped to a standard color space, such as XYZ—useful for color measurement—by a mapping function, e.g., the simple linear transform (usually derived through regression). This mapping, which we will refer to as linear color correction (LCC), has been demonstrated to work well in the number of studies. However, it can map to XYZs with high error. The advantage of the LCC is that it is independent of camera exposure. An alternative and potentially more powerful method for color correction is polynomial color correction (PCC). Here, the , , and values at a pixel are extended by the polynomial terms. For a given calibration training set PCC can significantly reduce the colorimetric error. However, the PCC fit depends on exposure, i.e., as exposure changes the vector of polynomial components is altered in a nonlinear way which results in hue and saturation shifts. This paper proposes a new polynomial-type regression loosely related to the idea of fractional polynomials which we call root-PCC (RPCC). Our idea is to take each term in a polynomial expansion and take its th root of each -degree term. It is easy to show terms defined in this way scale with exposure. RPCC is a simple (low complexity) extension of LCC. The experiments presented in this p- per demonstrate that RPCC enhances color correction performance on real and synthetic data.
机译:相机记录取决于设备的三个色彩响应()。相机坐标通过映射功能(例如,简单的线性变换(通常是通过回归得出))映射到标准颜色空间,例如XYZ(可用于颜色测量)。这种映射(我们称为线性色彩校正(LCC))已在许多研究中得到了很好的证明。但是,它可能会以高误差映射到XYZ。 LCC的优点在于它与相机曝光无关。可选的且可能更强大的颜色校正方法是多项式颜色校正(PCC)。在此,像素的,,和值被多项式项扩展。对于给定的校准训练集,PCC可以显着降低比色误差。然而,PCC拟合取决于曝光,即,随着曝光改变,多项式分量的矢量以非线性方式改变,这导致色调和饱和度偏移。本文提出了一种新的多项式回归,它与分数多项式的概念松散相关,我们称之为根PCC(RPCC)。我们的想法是在多项式展开式中取每个项,并取每个度项的th根。很容易显示以这种方式定义的术语随曝光量成比例。 RPCC是LCC的简单(低复杂度)扩展。本文介绍的实验表明,RPCC增强了对真实和合成数据的色彩校正性能。

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