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A SIFT-Color Moments Descriptor for Object Recognition

机译:用于对象识别的SIFT-Color Moments描述符

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Feature extraction technique has been widely studied and used in many fields, such as Augmented Reality, 3D Reconstruction and object recognition. In recent years, intensity-based descriptor have been widely used for feature extraction, and the SIFT descriptor is the most robust of them. However the color information is not included in SIFT, and the color provides important information in object description and matching tasks. SIFT can't differentiate the objects with similar shape but with different colors commendably. Many objects can be misclassified in object recognition without color information. Therefore, this paper proposes a novel descriptor combine SIFT with Color Moments to improve the performance of object recognition, and so called SIFT-Color Moments Descriptor. Experimental results show that the SIFT-Color Moments Descriptor is more robust than the traditional SIFT with color image.
机译:特征提取技术已被广泛研究并应用于增强现实,3D重构和对象识别等许多领域。近年来,基于强度的描述符已被广泛用于特征提取,而SIFT描述符是其中最强大的。但是,颜色信息未包含在SIFT中,并且颜色在对象描述和匹配任务中提供了重要信息。 SIFT不能区分形状相似但颜色不同的物体。在没有颜色信息的情况下,许多对象可能会在对象识别中被错误分类。因此,本文提出了一种新颖的SIFT-Color Moments Descriptor,它结合了SIFT和Color Moments来提高目标识别的性能。实验结果表明,SIFT-Color Moments Descriptor比带有彩色图像的传统SIFT更为健壮。

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