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An improved Genetic Algorithms-based Seam Carving method

机译:一种改进的基于遗传算法的缝雕法

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In a previous work, we proposed a new method to retarget images, i.e. to resize an image on both vertical and horizontal orientation, based on Genetic Algorithms called Genetic Seam Carving. The previous work presented a new individual modeling to represent connected pixels paths (seams) that were handled by Genetic Algorithms for image retargeting. This modeling has an important drawback, a fixed base-pixel position, the pivot. This condition is not interesting when the pivot is in a region of interest, such as an object one wants to remain in the image. Thus, our novel proposal presented in this paper aims at solving this issue, which could decrease the retargeting performance so that flexible seams are achieved and evolved. To do so, we also present new genetic operators for out target problem. As expected, our proposal outperforms the Seam Carving and the previous proposal in terms of image quality.
机译:在以前的工作中,我们提出了一种重新遗传图像的新方法,即在垂直和水平方向上调整图像大小,基于遗传算法称为遗传缝雕刻。以前的工作呈现了一种新的个人建模,以表示由遗传算法处理的连接像素路径(接缝),用于图像重新定位。该建模具有重要的缺点,固定基座像素位置,枢轴。当枢轴处于感兴趣区域时,这种情况并不有趣,例如一个人想要保留在图像中。因此,本文提出的新建议旨在解决这一问题,这可能会降低折叠性能,以便实现柔性接缝和进化。为此,我们还提出了新的遗传运营商进行目标问题。正如预期的那样,我们的提案在图像质量方面优于接缝雕刻和以前的提议。

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