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A feature construction method for general object recognition

机译:通用物体识别的特征构造方法

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摘要

This paper presents a novel approach for object detection using a feature construction method called Evolution-COnstructed (ECO) features. Most other object recognition approaches rely on human experts to construct features. ECO features are automatically constructed by uniquely employing a standard genetic algorithm to discover series of transforms that are highly discriminative. Using ECO features provides several advantages over other object detection algorithms including: no need for a human expert to build feature sets or tune their parameters, ability to generate specialized feature sets for different objects, and no limitations to certain types of image sources. We show in our experiments that ECO features perform better or comparable with hand-crafted state-of-the-art object recognition algorithms. An analysis is given of ECO features which includes a visualization of ECO features and improvements made to the algorithm.
机译:本文提出了一种新的用于目标检测的方法,该方法使用一种称为“进化复合”(ECO)特征的特征构建方法。大多数其他对象识别方法都依赖于人类专家来构建特征。通过独特地采用标准遗传算法来发现高度区分性的一系列变换,可以自动构建ECO功能。与其他对象检测算法相比,使用ECO功能具有多个优点,包括:无需专家来构建特征集或调整其参数,能够为不同对象生成专门的特征集,并且对某些类型的图像源没有限制。我们在实验中表明,ECO功能与手工制作的最新对象识别算法相比具有更好的性能或可比性。对ECO功能进行了分析,其中包括ECO功能的可视化以及对算法的改进。

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