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面向仿射目标识别的几何与仿生融合特征提取方法 被引量:2
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作者 余伶俐 易倩 +1 位作者 金鸣岳 周开军 《电子学报》 EI CAS CSCD 北大核心 2023年第6期1607-1618,共12页
针对由于拍摄视角不同,目标图像在水平或垂直方向发生拉长或压缩等仿射变换,进而无法正确识别的问题,本文设计了一种几何与仿生融合的特征提取方法 .首先,对传统的角点和直线检测进行改进,提出自适应Harris角点检测方法和去冗余的直线... 针对由于拍摄视角不同,目标图像在水平或垂直方向发生拉长或压缩等仿射变换,进而无法正确识别的问题,本文设计了一种几何与仿生融合的特征提取方法 .首先,对传统的角点和直线检测进行改进,提出自适应Harris角点检测方法和去冗余的直线检测方法,并将角点数、直线数和面积比向量作为几何特征.然后,采用生物启发变换算法提取图像的仿生启发特征,该算法包括两个阶段,每个阶段均需执行方向边缘检测和局部空间频率检测.接着,将输入图像的两种特征向量分别与标准数据库中的特征向量进行Pearson相关距离计算,获得匹配得分.最后,在考虑不同数据库两种特征区分性强弱的基础上自适应确定权值,最高融合分数所对应的标签即为该图像的识别结果.实验结果表明,该方法能较好地提取图像的仿射不变特征,并且该方法在Alphanumeric,MPEG-7,GTSRB和MNIST数据库的识别准确率分别为92.2%,96%,90%和87.3%. 展开更多
关键词 自适应Harris角点检测 去冗余的直线检测 几何特征 仿生启发特征 仿射目标识别
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Fast image matching algorithm based on affine invariants
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作者 张毅 卢凯 高颖慧 《Journal of Central South University》 SCIE EI CAS 2014年第5期1907-1918,共12页
Feature-based image matching algorithms play an indispensable role in automatic target recognition (ATR). In this work, a fast image matching algorithm (FIMA) is proposed which utilizes the geometry feature of ext... Feature-based image matching algorithms play an indispensable role in automatic target recognition (ATR). In this work, a fast image matching algorithm (FIMA) is proposed which utilizes the geometry feature of extended centroid (EC) to build affine invariants. Based on at-fine invariants of the length ratio of two parallel line segments, FIMA overcomes the invalidation problem of the state-of-the-art algorithms based on affine geometry features, and increases the feature diversity of different targets, thus reducing misjudgment rate during recognizing targets. However, it is found that FIMA suffers from the parallelogram contour problem and the coincidence invalidation. An advanced FIMA is designed to cope with these problems. Experiments prove that the proposed algorithms have better robustness for Gaussian noise, gray-scale change, contrast change, illumination and small three-dimensional rotation. Compared with the latest fast image matching algorithms based on geometry features, FIMA reaches the speedup of approximate 1.75 times. Thus, FIMA would be more suitable for actual ATR applications. 展开更多
关键词 affine invariants image matching extended centroid ROBUSTNESS PERFORMANCE
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