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A fuzzy-logic classifier for estimating the reliability of the self calibration of an embedded stereovision system

机译:用于评估嵌入式立体视觉系统自校准可靠性的模糊逻辑分类器

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Estimation of epipolar geometry can be done automatically in on-board stereovision systems, using interest points that are detected and matched. However, image disturbance that can happen in real-life situations can considerably lower the performance. A reliability score computing method is proposed, based on a fuzzy logic classifier. Its input is the data extracted from the estimation process. The classifier is trained with artificial image disturbance, using a set of typical image pairs. Results show that the computed score is indeed related to the performance of estimation.
机译:使用检测和匹配的兴趣点,可以在板载立体系统中自动进行e2ipolar几何估计。然而,在现实生活中可能发生的图像干扰可能会降低性能。基于模糊逻辑分类器提出了一种可靠性评分计算方法。其输入是从估计过程中提取的数据。分类器用人工图像干扰训练,使用一组典型的图像对。结果表明,计算得分确实与估计的性能有关。

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