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An Image-Matching Method Using Template Updating Based on Statistical Prediction of Visual Noise

机译:基于视觉噪声统计预测的模板更新图像匹配方法

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An image-matching method that can continuously recognize images precisely over a long period of time is proposed. On a production line, although a multitude of the same kind of components can be recognized, the appearance of a target object changes over time. Usually, to accommodate that change in appearance, the template used for image recognition is periodically updated by using past recognition results. At that time, information other than that concerning the target object might be included in the template and cause false recognition. In this research, we define the pixels which become those factors as "noisy-pixel". With the proposed method, noisy pixels in past recognition results are extracted, and they are excluded from the processing to update the template. Accordingly, the template can be updated in a stable manner. To evaluate the performance of the proposed method, 5000 images in which the appearance of the target object changes (due to variation of lighting and adhesion of dirt) were used. According to the results of the evaluation, the proposed method achieves recognition rate of 99.5%, which is higher than that of a conventional update-type template-matching method.
机译:提出了一种可以长时间精确地连续识别图像的图像匹配方法。在生产线上,虽然可以识别许多相同种类的组件,但是目标对象的外观会随时间而变化。通常,为了适应外观的变化,用于图像识别的模板会通过使用过去的识别结果定期进行更新。那时,模板中可能包含与目标对象有关的信息以外的信息,并导致错误识别。在这项研究中,我们将成为这些因素的像素定义为“噪点像素”。利用所提出的方法,提取过去识别结果中的噪声像素,并将其从处理中排除以更新模板。因此,可以稳定地更新模板。为了评估该方法的性能,使用了5000张图像,其中目标对象的外观发生了变化(由于光照的变化和污垢的附着)。根据评估结果,该方法的识别率为99.5%,高于传统的更新类型模板匹配方法。

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