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Small sample scene categorization from perceptual relations

机译:基于感知关系的小样本场景分类

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This paper addresses the problem of scene categorization while arguing that better and more accurate results can be obtained by endowing the computational process with perceptual relations between scene categories. We first describe a psychophysical paradigm that probes human scene categorization, extracts perceptual relations between scene categories, and suggests that these perceptual relations do not always conform the semantic structure between categories. We then incorporate the obtained perceptual findings into a computational classification scheme, which takes inter-class relationships into account to obtain better scene categorization regardless of the particular descriptors with which scenes are represented. We present such improved classification results using several popular descriptors, we discuss why the contribution of inter-class perceptual relations is particularly pronounced for under-sampled training sets, and we argue that this mechanism may explain the ability of the human visual system to perform well under similar conditions. Finally, we introduce an online experimental system for obtaining perceptual relations for large collections of scene categories.
机译:本文讨论了场景分类的问题,同时认为通过赋予场景类别之间的感官关系计算过程可以获得更好,更准确的结果。我们首先描述一种心理物理学范式,该范式探讨人类场景的分类,提取场景类别之间的知觉关系,并建议这些知觉关系并不总是符合类别之间的语义结构。然后,我们将获得的感知发现合并到计算分类方案中,该方案将类间的关系考虑在内,以获得更好的场景分类,而与代表场景的特定描述符无关。我们使用几种流行的描述符展示了这种改进的分类结果,我们讨论了为什么类间知觉关系对欠采样训练集的影响特别明显,并且我们认为这种机制可以解释人类视觉系统表现良好的能力在相似的条件下。最后,我们介绍了一个在线实验系统,用于获取大量场景类别的感知关系。

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