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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >Fast image registration by hierarchical soft correspondence detection
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Fast image registration by hierarchical soft correspondence detection

机译:通过分层软对应检测快速进行图像配准

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摘要

A new approach, based on the hierarchical soft correspondence detection, has been presented for significantly improving the speed of our previous HAMMER image registration algorithm. Currently, HAMMER takes a relative long time, e.g., up to 80 min, to register two regular sized images using Linux machine (with 2.40 GHz CPU and 2-Gbyte memory). This is because the results of correspondence detection. used to guide the image warping, can be ambiguous in complex structures and thus the image warping has to be conservative and accordingly takes long time to complete. In this paper, a hierarchical soft correspondence detection technique has been employed to detect correspondences more robustly, thereby allowing the image warping to be completed straightforwardly and fast. By incorporating this hierarchical soft correspondence detection technique into the HAMMER registration framework, both the robustness and the accuracy of registration (in terms of low average registration error) can be achieved. Experimental results on real and simulated data show that the new registration algorithm, based on the hierarchical soft correspondence detection, can run nine times faster than HAMMER while keeping the similar registration accuracy.
机译:提出了一种基于分层软对应检测的新方法,可以显着提高以前的HAMMER图像配准算法的速度。当前,HAMMER使用Linux机器(带有2.40 GHz CPU和2GB内存)注册两个常规大小的图像需要花费相对较长的时间,例如最多80分钟。这是因为对应检测的结果。用于引导图像变形的图像在复杂的结构中可能是模棱两可的,因此图像变形必须是保守的,因此需要很长时间才能完成。在本文中,采用了分层的软对应检测技术来更鲁棒地检测对应,从而可以直接,快速地完成图像变形。通过将此分层的软件对应检测技术合并到HAMMER注册框架中,可以实现注册的鲁棒性和准确性(就低平均注册错误而言)。在真实和模拟数据上的实验结果表明,基于分层软对应检测的新配准算法的运行速度比HAMMER快9倍,同时保持了相似的配准精度。

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