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Mask pyramid methodology for enhanced localization in image fusion and enhancement

机译:面罩金字塔方法,用于提高图像融合和增强中的本地化

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Image fusion is a process that combines regions of images from different sources into a single fused image based on a salience selection rule for each region. In this paper, we proposed an algorithmic approach using a mask pyramid to better localize the selection process. A mask pyramid operates in different scales of the image to improve the fused image quality beyond a global selection rule. The proposed approach offers a generic methodology for applications in image enhancement, high dynamic range compression, depth of field extension, and image blending. The mask pyramid can also be encoded for intelligent analysis of source imagery. Several examples of this mask pyramid method are provided to demonstrate its performance in a variety of applications. A new embedded system architecture that builds upon the Acadia II Vision Processor is proposed
机译:图像融合是基于每个区域的显着选择规则将图像区域与不同源的图像区域组合成单个融合图像。在本文中,我们提出了一种使用掩模金字塔的算法方法来更好地定位选择过程。面罩金字塔在图像的不同尺度上运行,以提高超出全局选择规则的融合图像质量。所提出的方法为图像增强,高动态范围压缩,景深扩展和图像混合提供了一种通用方法。掩模金字塔也可以编码源图像的智能分析。提供了该掩模金字塔方法的若干例子,以展示其在各种应用中的性能。提出了一个新的嵌入式系统架构,在Acadia II视觉处理器上建立在Acadia II视觉处理器上

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