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Is visual similarity sufficient for semantic object recognition?

机译:视觉相似度足以识别语义对象吗?

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The paper discusses experiments (using exemplary classes of man-made objects) on the-same-class object detection based on the keypoint matching techniques. Two algorithms are used, i.e. building clusters of consistently similar and distributed keypoints, and matching individual points represented by novel descriptors incorporating semi-local geometry of images. It is shown that although detection of near-identically looking objects in random images can be performed reliably, the same is not possible for semantically defined classes of objects (even if we expect a certain level of visual and configurational uniformity within the class). The experiments conducted on PASCAL2007 dataset provide results which are not better than random selection. However, selected experimental results indicate that for certain classes of objects semantics may be significantly correlated with the visual and configurational consistencies.
机译:本文讨论了基于关键点匹配技术的同类对象检测实验(使用示例性的人造对象类)。使用了两种算法,即建立一致且相似且分布关键点的簇,并匹配由结合了图像的半局部几何形状的新颖描述符表示的单个点。结果表明,尽管可以可靠地检测随机图像中近乎相同外观的物体,但对于语义定义的物体类别而言,这是不可能的(即使我们期望该类别中一定程度的视觉和配置均匀性)。在PASCAL2007数据集上进行的实验提供的结果并不比随机选择好。但是,选定的实验结果表明,对于某些类别的对象,语义可能与视觉和配置一致性显着相关。

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