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基于POCS和范例学习的序列图像超分辨率重建
引用本文:王丽辉,张宏烈,宋峰.基于POCS和范例学习的序列图像超分辨率重建[J].网络安全技术与应用,2014(3):200-200,203.
作者姓名:王丽辉  张宏烈  宋峰
作者单位:[1]齐齐哈尔大学齐齐哈尔林业学校,黑龙江161006 [2]齐齐哈尔大学,黑龙江161006
摘    要:实现序列图像的超分辨率重建,需要利用同一场景的多幅低分辨率图像之间的相对运动信息.并将它们融合到单幅高分辨率图像中,以有效的去除低分辨率图像中的模糊和噪声。本文提出首先分析序列图像结构、纹理等多维特征的不同特性和作用,利用分解得到的多维特征分别采用凸集投影(POCS)、范例学习等具有针对性的重建方法进行图像放大,在有效-融合多维特征重建图像的基础上,实现序列图像的多维特征超分辨率重建。

关 键 词:超分辨率重建  序列图像  多维特征  凸集投影  范例学习

Super resolution reconstruction of image sequences POCS and instancebased learning
Wang Lihui,Zhang Honglie,Song Feng.Super resolution reconstruction of image sequences POCS and instancebased learning[J].Net Security Technologies and Application,2014(3):200-200,203.
Authors:Wang Lihui  Zhang Honglie  Song Feng
Abstract:For implementing sequence image super-resolution reconstruction, need to use more of the same scene ot relative movement between the low-resolution image information, and put them into a single high-resolution image, to effectively remove the blur and noise in the low-resolution image.In this paper, first of all, analysis the different characteristics between the sequence image structure and the texture, using the targeted image super-resolution reconstruction methods POCS and examples-study for the decomposed multi-dimensional characteristics, implemented sequence image super-resolution reconstruction based on the effective fusion for the nmlti-dilnensional reconstruction images. Keywords: Super-Resolution Reconstruction; Sequence Image; Multi-dimensional; POCS; Example-Study
Keywords:Super-Resolution Reconstruction  Sequence Image  Multi-dimensional  POCS  Example-Study
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