Visual learning and object verification with illumination invariance

K. Ohba, Yoichi Sato, K. Ikeuchi
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引用次数: 7

Abstract

This paper describes a method for recognizing partially occluded objects to realize a bin-picking task under different levels of illumination brightness by using the eigenspace analysis. In the proposed method, a measured color in the RGB color space is transformed into the HSV color space. Then, the hue of the measured color, which is invariant to change in illumination brightness and direction, is used for recognizing multiple objects under different levels of illumination conditions. The proposed method was applied to real images of multiple objects under different illumination conditions, and the objects were recognized and localized successfully.
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基于光照不变性的视觉学习与目标验证
本文提出了一种利用特征空间分析来识别部分遮挡物体,实现不同光照亮度下的拣筒任务的方法。在该方法中,将RGB色彩空间中的测量颜色转换为HSV色彩空间。然后,利用被测颜色的色相不受光照亮度和方向变化的影响,对不同光照水平下的多个目标进行识别。将该方法应用于不同光照条件下的多目标实景图像,成功实现了目标的识别和定位。
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