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Human-inspired features for natural scene classification

机译:受人启发的自然场景分类功能

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摘要

Scene classification has been the target of much research. Most psychological studies have agreed that humans perceive a scene first globally recognizing its category and then they localize and recognize objects. In previous work the same feature set were used in classifying both natural scenes and manmade scenes simultaneously. We suggest the use of different features for each. In this paper the proposed features for natural scenes classification are presented. The new proposed features are inspired from the way humans perceive and recognize scenes at a glance. Outdoor scenes global features such as openness, roughness, and dominant directions have been investigated and translated into a new feature set, focusing on characteristics that efficiently differentiate between natural scene sub-classes. The effectiveness of the proposed features is tested using two datasets consists of 4 natural scenes [coast, mountain, forest, and open country) and 6 natural scenes (the previous 4 scenes plus desert and waterfall scenes), the first dataset is a benchmark data set used for testing scene classification techniques. Results showed that a classification accuracy of up to 95% could be achieved using the proposed feature set.
机译:场景分类已成为许多研究的目标。大多数心理学研究都认为,人类首先会全局识别场景,然后定位并识别对象。在以前的工作中,使用相同的功能集同时对自然场景和人造场景进行分类。我们建议为每个功能使用不同的功能。本文提出了自然场景分类的建议特征。拟议的新功能的灵感来自于人类一眼就能感知和识别场景的方式。已经研究了室外场景的整体特征,例如开放度,粗糙度和主导方向,并将其转换为新的特征集,重点关注有效区分自然场景子类的特征。使用两个数据集(包括4个自然场景(海岸,山地,森林和开阔地带)和6个自然场景(前4个场景以及沙漠和瀑布场景)组成的数据集测试了所提出功能的有效性。第一个数据集是基准数据用于测试场景分类技术的集。结果表明,使用建议的功能集可以实现高达95%的分类精度。

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