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Statistical model of color and disparity with application to Bayesian stereopsis

机译:颜色和视差统计模型在贝叶斯立体视中的应用

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Extensive research has been conducted relating the natural scene statistics of luminance and depth; however, very little work has been done on analyzing the statistical relationships between depth and chromatic information. In this paper, we examine and derive statistical models between disparity and both luminance and chrominance information by transforming natural images into the more perceptually relevant CIELAB color space. To demonstrate the effectiveness of these models, we further exploit them with application to Bayesian stereo algorithms. The simulation results show that incorporating the derived statistical models augments the performance of Bayesian stereo algorithms. In addition, these results also support psychophysical evidence that chromatic information can improve binocular visual processing.
机译:关于亮度和深度的自然场景统计已经进行了广泛的研究。但是,在分析深度和色度信息之间的统计关系方面所做的工作很少。在本文中,我们通过将自然图像转换为在视觉上更相关的CIELAB颜色空间,来检查和导出视差与亮度和色度信息之间的统计模型。为了证明这些模型的有效性,我们将其进一步应用到贝叶斯立体声算法中。仿真结果表明,合并导出的统计模型可以增强贝叶斯立体算法的性能。此外,这些结果还支持心理信息,即色度信息可以改善双眼视觉处理。

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