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A New Method for Cartridge Case Image Mosaic

机译:弹壳图像拼接的新方法

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摘要

In the process of caitridge case marks detection, due to the limitations of micrjscope and the unsmoothed specimen surface, not all information can be obtained from just one image. Therefore, two kinds of images can be first obtained and then the informal ion can be supplemented by image mosaic method which facilitates experts' analysis and the following computer recognition. This paper proposes a new cartridge case image mosaic method by using image registration and fusion techniques. In the registration stage, the initial matching is obtain :d by using scale invariant feature transform (SIFT), but some incorrect matches greatly affect the registration accuracy. Therefore, in consideration of the specific characteristics of the cartridge case image, graph transformation matching, angle and scale constraint using adaptive K-means clustering are respectively applied to remove incorrect matches. In order to achieve the complementary advantages, voting mechanism is applied to integrate them; meanwhile, genetic algorithm (GA) is employed to select optimal combined parameters, making it possible to adaptively choose to integrate and registration results are optimized based on different images. After refining, the registration accuracy is further enhanced. In the fusion stage, the stitched image is obtained, and histogram matching is employed to smooth visible seams. The mosaic performance is evaluated using visual inspection and objective performance measurements, and results show the advantages of proposed method compared to conventional method.
机译:在检测小凹痕的过程中,由于显微镜的局限性以及标本表面不光滑,不能仅从一张图像中获得全部信息。因此,可以先获得两种图像,然后通过图像拼接方法对非正式离子进行补充,以利于专家分析和后续的计算机识别。提出了一种利用图像配准和融合技术的墨盒匣图像拼接新方法。在配准阶段,通过使用尺度不变特征变换(SIFT)获得初始匹配:d,但是一些不正确的匹配会极大地影响配准精度。因此,考虑到盒壳体图像的特定特征,分别应用利用自适应K-均值聚类的图变换匹配,角度和比例约束来去除不正确的匹配。为了实现互补优势,采用投票机制进行整合。同时,利用遗传算法(GA)选择最优的组合参数,从而可以自适应地选择整合,并根据不同的图像对配准结果进行优化。精炼后,套准精度进一步提高。在融合阶段,获得缝合图像,并使用直方图匹配来平滑可见接缝。通过目视检查和客观性能测量来评估镶嵌性能,结果显示了与传统方法相比所提方法的优势。

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