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Template match using local feature with view invariance

机译:模板匹配使用本地功能,视图不变性

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摘要

Matching the template image in the target image is the fundamental task in the field of computer vision. Aiming at the deficiency in the traditional image matching methods and inaccurate matching in scene image with rotation, illumination and view changing, a novel matching algorithm using local features are proposed in this paper. The local histograms of the edge pixels (LHoE) are extracted as the invariable feature to resist view and brightness changing. The merits of the LHoE is that the edge points have been little affected with view changing, and the LHoE can resist not only illumination variance but also the polution of noise. For the process of matching are excuded only on the edge points, the computation burden are highly reduced. Additionally, our approach is conceptually simple, easy to implement and do not need the training phase. The view changing can be considered as the combination of rotation, illumination and shear transformation. Experimental results on simulated and real data demonstrated that the proposed approach is superior to NCC(Normalized cross-correlation) and Histogram-based methods with view changing.
机译:匹配目标图像中的模板图像是计算机愿景领域的基本任务。针对传统图像匹配方法的缺陷和在具有旋转的场景图像中的不准确匹配,在本文中提出了一种新颖的匹配算法。边缘像素(LHOE)的局部直方图被提取为不变特征以抵抗视图和亮度变化。 LHOE的优点是,边缘点对视图变化很小,并且LHOE不仅可以抵抗照明方差,而且还可以抵抗噪音的罚款。对于匹配的过程仅在边缘点上被侵入,计算负担高度降低。此外,我们的方法在概念上简单,易于实施,不需要培训阶段。视图改变可以被视为旋转,照明和剪切变换的组合。模拟和实际数据的实验结果表明,所提出的方法优于NCC(归一化互相关)和基于直方图的方法,具有视图变化。

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