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Improved Maximum Average Correlation Height Filter with Adaptive Log Base Selection for Object Recognition

机译:改进的最大平均相关高度过滤器,带有自适应对数库选择,可用于物体识别

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Sensitivity to the variations in the reference image is a major concern when recognizing target objects. A combinational framework of correlation filters and logarithmic transformation has been previously reported to resolve this issue alongside catering for scale and rotation changes of the object in the presence of distortion and noise. In this paper, we have extended the work to include the influence of different logarithmic bases on the resultant correlation plane. The meaningful changes in correlation parameters along with contraction/expansion in the correlation plane peak have been identified under different scenarios. Based on our research, we propose some specific log bases to be used in logarithmically transformed correlation filters for achieving suitable tolerance to different variations. The study is based upon testing a range of logarithmic bases for different situations and finding an optimal logarithmic base for each particular set of distortions. Our results show improved correlation and target detection accuracies.
机译:当识别目标物体时,对参考图像中的变化的敏感性是主要关注的问题。先前已经报道了相关滤波器和对数变换的组合框架来解决此问题,同时在存在失真和噪声的情况下适应对象的比例和旋转变化。在本文中,我们将工作扩展到包括不同对数碱基对结果相关平面的影响。在不同情况下,已经确定了相关参数的有意义的变化以及相关平面峰中的收缩/扩展。根据我们的研究,我们提出了一些特定的对数基础,用于对数变换的相关滤波器,以实现对不同变化的适当容忍度。该研究基于对不同情况下的一系列对数底数进行测试,并为每组特定的失真找到最佳对数底数。我们的结果显示了改进的相关性和目标检测准确性。

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