New 2D Feature Descriptor Free from Orientation Compensation with k-Means Clustering

Manel Benaissa, A. Bennia
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引用次数: 3

Abstract

In this paper, we propose two novel approaches in the field of feature description and matching. The first approach concerns the feature description and matching part, where we proposed an orientation invariant feature descriptor without an additional step dedicated to this task. We exploited the information provided by two representations of the image (intensity and gradient) for a better understanding and representation of the feature point distribution. The provided information is summarized in two cumulative histograms and used in the feature description and matching process. In the context of object detection, we introduced an unsupervised learning method based on k-means clustering. Which we used as an outlier pre-elimination phase after the matching process to improve our descriptor precision. Experiments shown its robustness to image changes and a clear increase in terms of precision of the tested descriptors after the pre-elimination phase.This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium provided the original work is properly cited.
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基于k-Means聚类的无方向补偿二维特征描述子
在本文中,我们提出了两种新的特征描述和匹配方法。第一种方法涉及特征描述和匹配部分,其中我们提出了一个方向不变的特征描述符,而没有额外的步骤专门用于此任务。我们利用图像的两种表示(强度和梯度)提供的信息来更好地理解和表示特征点分布。所提供的信息汇总在两个累积直方图中,并用于特征描述和匹配过程。在目标检测方面,我们引入了一种基于k-means聚类的无监督学习方法。我们将其用作匹配过程后的离群值预消除阶段,以提高描述符的精度。实验表明,该方法对图像变化具有鲁棒性,并且经过预消去阶段后,所测试描述符的精度有明显提高。这是一篇在知识共享署名许可(http://creativecommons.org/licenses/by/4.0/)条款下发布的开放获取文章,该许可允许在任何媒介上不受限制地使用、分发和复制,只要原始作品被适当引用。
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