Evolutionary CT image reconstruction

Z. Nakao, Midori Takashibu, Yenwei Chen
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引用次数: 3

Abstract

An evolutionary algorithm for reconstructing CT gray images from projections is presented; the algorithm reconstructs two-dimensional unknown images from four one-dimensional projections. A Laplacian constraint term is included in the fitness function of the genetic algorithm for handling smooth images, and the evolutionary process reconstructs images into finer ones by partitioning the images gradually thereby increasing the chromosome size exponentially as the generation proceeds. Results obtained are compared to those obtained by the well-known algebraic reconstruction technique (ART), and it was found that the evolutionary method is more effective than ART when the number of projection directions is very limited.
进化CT图像重建
提出了一种由投影重建CT灰度图像的进化算法;该算法从四个一维投影重建二维未知图像。在遗传算法的适应度函数中加入拉普拉斯约束项,用于处理平滑图像,进化过程通过逐步分割图像将图像重构为更精细的图像,从而使染色体大小随着生成的进行呈指数增长。将得到的结果与代数重建技术(ART)的结果进行了比较,发现在投影方向数量有限的情况下,进化方法比ART方法更有效。
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