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Multi-focus image fusion based on block matching in 3D transform domain 被引量:5
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作者 YANG Dongsheng HU Shaohai +2 位作者 LIU Shuaiqi MA Xiaole SUN Yuchao 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2018年第2期415-428,共14页
Fusion methods based on multi-scale transforms have become the mainstream of the pixel-level image fusion. However,most of these methods cannot fully exploit spatial domain information of source images, which lead to ... Fusion methods based on multi-scale transforms have become the mainstream of the pixel-level image fusion. However,most of these methods cannot fully exploit spatial domain information of source images, which lead to the degradation of image.This paper presents a fusion framework based on block-matching and 3D(BM3D) multi-scale transform. The algorithm first divides the image into different blocks and groups these 2D image blocks into 3D arrays by their similarity. Then it uses a 3D transform which consists of a 2D multi-scale and a 1D transform to transfer the arrays into transform coefficients, and then the obtained low-and high-coefficients are fused by different fusion rules. The final fused image is obtained from a series of fused 3D image block groups after the inverse transform by using an aggregation process. In the experimental part, we comparatively analyze some existing algorithms and the using of different transforms, e.g. non-subsampled Contourlet transform(NSCT), non-subsampled Shearlet transform(NSST), in the 3D transform step. Experimental results show that the proposed fusion framework can not only improve subjective visual effect, but also obtain better objective evaluation criteria than state-of-the-art methods. 展开更多
关键词 image fusion block matching 3d transform block-matching and 3d(bm3d) non-subsampled Shearlet transform(NSST)
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改进的Roberts图像边缘检测算法 被引量:55
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作者 王方超 张旻 宫丽美 《探测与控制学报》 CSCD 北大核心 2016年第2期88-92,共5页
针对复杂背景下图像边缘检测中存在抗噪性能不强、边缘不连续等问题,提出了改进的Roberts边缘检测算法。该算法采用3×3邻域代替Roberts算法中2×2邻域来计算梯度幅值;并利用图像块之间相似性的三维块匹配的去噪模型,提高Robert... 针对复杂背景下图像边缘检测中存在抗噪性能不强、边缘不连续等问题,提出了改进的Roberts边缘检测算法。该算法采用3×3邻域代替Roberts算法中2×2邻域来计算梯度幅值;并利用图像块之间相似性的三维块匹配的去噪模型,提高Roberts算子的检测精度和抗噪性能;通过最佳阈值迭代方法代替人为指定阈值来获取最佳分割阈值,有效地提取图中目标轮廓。仿真实验结果表明,该算法PSNR达到33dB左右,比抗噪形态学边缘检测算法和一种改进的Roberts和灰色关联分析的边缘检测算法抗噪性能好,在抑制噪声干扰的同时,能保留边缘信息,较好提取目标的整体轮廓信息,为后续目标识别奠定基础。 展开更多
关键词 边缘检测 梯度幅值 三维块匹配 最佳阈值迭代分割
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