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On the use of spatial relations between objects for image classification

机译:关于利用对象之间的空间关系进行图像分类

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摘要

Image classification is addressed in this paper by utilizing spatial relation of detected objects in a rule-based fashion. Instances of particular object classes are detected combining bottom-up (learn-able models based on simple features) and top-down information(object models consisting of primitive geometric shapes such as lines). The rule-based system acts as a model for the spatial configuration of objects, also providing a human interpretable justification of image classification. Experimental results in the athletic domain show that despite inefficiencies in object detection, spatial relations allow for efficient discrimination between visually similar images classes.
机译:本文通过基于规则的方式利用检测对象的空间关系来解决图像分类问题。通过组合自下而上(基于简单特征的可学习模型)和自上而下的信息(由诸如线之类的原始几何形状组成的对象模型)来检测特定对象类的实例。基于规则的系统充当对象空间配置的模型,还为图像分类提供了人类可解释的理由。运动领域的实验结果表明,尽管对象检测效率低下,但空间关系允许有效区分视觉上相似的图像类别。

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