A comparison of the animal recognition between the real objects and the modeled 3D objects

Matuska Slavomir, Hudec Robert, Hlubik Jan, Talapka Jozef
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引用次数: 1

Abstract

This paper proposed about comparison of the animal recognition processed on the real world objects and the modeled 3D objects. The object classification consists of the three main steps - feature extraction, training classifier and image evaluation. Feature description is based on locale visual descriptors like SIFT or SURF. Support Vector Machine (SVM) in combination with the bags of visual keypoints (BOW) is used to classify descriptors. The 3D models were created using photogrammetry and 3D modeling for ideal 3D models of mammals. This method of 3D model creation is described in details.
真实物体与模型三维物体的动物识别比较
本文提出了在真实物体上处理的动物识别与在三维物体上建模的动物识别的比较。目标分类包括特征提取、分类器训练和图像评价三个主要步骤。特征描述基于区域视觉描述符,如SIFT或SURF。将支持向量机(SVM)与视觉关键点袋(BOW)相结合,对描述符进行分类。3D模型是利用摄影测量和理想的哺乳动物3D模型的3D建模创建的。详细描述了这种三维模型创建方法。
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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