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Joint High Dynamic Range Imaging and Color Demosaicing

机译:联合高动态范围成像和彩模

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A non-parametric high dynamic range (HDR) fusion approach is proposed that works on raw images of single-sensor color imaging devices which incorporate the Bayer pattern. Thereby the non-linear opto-electronic con-version function (OECF) is recovered before color demosaicing, so that interpolation artifacts do not affect the photometric calibration. Graph-based segmentation greedily clusters the exposure set into regions of roughly constant radiance in order to regularize the OECF estimation. The segmentation works on Gaussian-blurred sensor images, whereby the artificial gray value edges caused by the Bayer pattern are smoothed away. With the OECF known the 32-bit HDR radiance map is reconstructed by weighted summation from the differently exposed raw sensor images. Because the radiance map contains lower sensor noise than the individual images, it is finally demosaiced by weighted bilinear interpolation which prevents the interpolation across edges. Here, the previous segmentation results from the photometric calibration are utilized. After demosaicing, tone mapping is applied, whereby remaining interpolation artifacts are further damped due to the coarser tonal quantization of the resulting image.
机译:提出了一种非参数高动态范围(HDR)融合方法,其适用于包含拜耳图案的单传感器彩色成像装置的原始图像。由此,在彩色去脱色之前恢复非线性光电型Con-unigure(OECF),以便插值伪像不会影响光度校准。基于图形的分段贪婪地将曝光设定为大致恒定辐射的区域,以便将OECF估计进行规范。分割适用于高斯模糊的传感器图像,由此由拜耳图案引起的人造灰度值边缘被平滑。利用OECF已知,由不同暴露的原始传感器图像的加权求和重建32位HDR辐射图。因为光线图包含比各个图像更低的传感器噪声,所以它最终由加权双线性插值进行了去脱模,这防止了跨越边的插值。这里,利用来自光度校准的先前分段结果。在去脱发之后,应用色调映射,由此由于所得到的图像的色调量化粗略量化而进一步阻尼内插时伪像。

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