首页> 外文会议>Conference on Automatic Target Recognition XIV; 20040413-20040415; Orlando,FL; US >Using image local response for efficient image fusion with the hybrid evolutionary algorithm
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Using image local response for efficient image fusion with the hybrid evolutionary algorithm

机译:使用图像局部响应和混合进化算法进行有效图像融合

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Image fusion serves as the basis for automatic target recognition; it maps images of the same scene received from different sensors into a common reference system. A novel fusion method is described that employs image local response and the hybrid evolutionary algorithm (HEA). Given geometric transformation A(V) under parameter vector V (e.g. affine image transformation) of the images subjected to fusion, image local response is defined as image transform R(V) that maps the image onto itself, with the small perturbations of the parameter vector V. Unit variations of the components of the parameter vector V are applied to the image, and the corresponding variations of the least squared differences of the gray levels of the two images (i.e. before and after parameter variation) form the image response matrix. The transform R(V) extracts only the dynamic contents of the image, i.e. the salient features that are most sensitive to geometric transformation A(V). Since R(V) maps the image onto itself, the result of the mapping is largely invariant to the type of the sensor that was used to obtain the image. Once the response matrices are built for all images subjected to fusion, HEA is used to map the images into the common reference system.
机译:图像融合是自动目标识别的基础。它将从不同传感器接收到的同一场景的图像映射到一个公共参考系统中。描述了一种新颖的融合方法,该方法采用图像局部响应和混合进化算法(HEA)。给定要进行融合的图像的参数矢量V(例如仿射图像变换)下的几何变换A(V),则将图像局部响应定义为将图像映射到自身的图像变换R(V),该参数具有较小的扰动向量V。将参数向量V的分量的单位变化应用于图像,并且两个图像的灰度级的最小二乘方差的相应变化(即,参数变化之前和之后)形成图像响应矩阵。变换R(V)仅提取图像的动态内容,即对几何变换A(V)最敏感的显着特征。由于R(V)将图像映射到其自身,因此映射的结果在很大程度上与用于获取图像的传感器类型无关。一旦为所有要融合的图像建立了响应矩阵,便会使用HEA将图像映射到公共参考系统中。

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