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A novel multi-view object recognition in complex background

机译:复杂背景下的新型多视点物体识别

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Recognizing objects from arbitrary aspects is always a highly challenging problem in computer vision, and most existing algorithms mainly focus on a specific viewpoint research. Hence, in this paper we present a novel recognizing framework based on hierarchical representation, part-based method and learning in order to recognize objects from different viewpoints. The learning evaluates the model's mistakes and feeds it back the detector to avid the same mistakes in the future. The principal idea is to extract intrinsic viewpoint invariant features from the unseen poses of object, and then to take advantage of these shared appearance features to support recognition combining with the improved multiple view model. Compared with other recognition models, the proposed approach can efficiently tackle multi-view problem and promote the recognition versatility of our system. For an quantitative valuation The novel algorithm has been tested on several benchmark datasets such as Caltech 101 and PASCAL VOC 2010. The experimental results validate that our approach can recognize objects more precisely and the performance outperforms others single view recognition methods.
机译:在计算机视觉中,从任意方面识别对象始终是一个极具挑战性的问题,并且大多数现有算法主要着眼于特定的视点研究。因此,在本文中,我们提出了一种基于分层表示,基于零件的方法和学习的新颖识别框架,以便从不同的观点识别对象。学习将评估模型的错误,并将其反馈给检测器,以在将来证明相同的错误。主要思想是从看不见的物体姿势中提取固有的视点不变特征,然后利用这些共享的外观特征与改进的多视图模型相结合来支持识别。与其他识别模型相比,该方法可以有效地解决多视角问题,提高系统识别的多功能性。进行定量评估该新颖算法已在多个基准数据集(例如Caltech 101和PASCAL VOC 2010)上进行了测试。实验结果证明,我们的方法可以更精确地识别对象,并且性能优于其他单视图识别方法。

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