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Image Fusion Using Bi-directional Similarity

机译:使用双向相似度的图像融合

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摘要

Infrared images are widely used in the practical applications to capture abundant information. However, it is still challenging to enhance the infrared image by the visual image. In this paper, we propose an effective method using bidirectional similarity. In the proposed method, we aim to find an optimal solution from many feasible solutions without introducing intermediate image. We employ some priori constraints to meet the requirements of image fusion which can be detailed to preserve both good characteristics in the infrared image and spatial information in the visual image. In the iterative step, we use the matrix with the square of the difference between images to integrate the image holding most information. We call this matrix the bidirectional similarity distance. By the bidirectional similarity distance, we can get the transitive images. Then, we fuse the images according to the weight. Experimental results show that, compared to the traditional image fusion algorithm, fusion images from bidirectional similarity fusion algorithm have greatly improved in the subjective vision, entropy, structural similarity index measurement. We believe that the proposed scheme can have a wide applications.
机译:红外图像在实际应用中被广泛使用以捕获大量信息。然而,通过视觉图像来增强红外图像仍然是挑战。在本文中,我们提出了一种使用双向相似性的有效方法。在提出的方法中,我们的目标是在不引入中间图像的情况下,从许多可行的解决方案中找到最佳解决方案。我们采用一些先验约束来满足图像融合的要求,可以对其进行详细说明以保留红外图像中的良好特性和视觉图像中的空间信息。在迭代步骤中,我们使用矩阵与图像之间的差异的平方来整合包含最多信息的图像。我们将此矩阵称为双向相似距离。通过双向相似距离,我们可以得到传递图像。然后,我们根据重量融合图像。实验结果表明,与传统的图像融合算法相比,双向相似度融合算法的融合图像在主观视觉,熵,结构相似性指标的测量上有很大的提高。我们认为,提出的方案可以有广泛的应用。

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