Center Symmetric Local Descriptors for Image Classification

Vaasudev Narayanan, B. Parsi
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引用次数: 4

Abstract

Local feature description forms an integral part of texture classification, image recognition, and face recognition. In this paper, the authors propose Center Symmetric Local Ternary Mapped Patterns (CS-LTMP) and eXtended Center Symmetric Local Ternary Mapped Patterns (XCS-LTMP) for local description of images. They combine the strengths of Center Symmetric Local Ternary Pattern (CS-LTP) which uses ternary codes and Center Symmetric Local Mapped Pattern (CS-LMP) which captures the nuances between images to make the CS-LTMP. Similarly, the auhtors combined CS-LTP and eXtended Center Symmetric Local Mapped Pattern (XCS-LMP) to form eXtended Center Symmetric Local Ternary Mapped Pattern (XCS-LTMP). They have conducted their experiments on the CIFAR10 dataset and show that their proposed methods perform significantly better than their direct competitors.
图像分类的中心对称局部描述符
局部特征描述是纹理分类、图像识别和人脸识别的重要组成部分。本文提出了中心对称局部三元映射模式(CS-LTMP)和扩展中心对称局部三元映射模式(XCS-LTMP)用于图像的局部描述。它们结合了使用三元编码的中心对称局部三元模式(CS-LTP)和捕捉图像之间细微差别的中心对称局部映射模式(CS-LMP)的优势,形成了CS-LTMP。同样,作者将CS-LTP与扩展中心对称局部映射模式(XCS-LMP)结合起来,形成扩展中心对称局部三元映射模式(XCS-LTMP)。他们已经在CIFAR10数据集上进行了实验,并表明他们提出的方法比直接竞争对手表现得好得多。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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