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Real-time scene-based nonuniformity correction using feature pattern matching

机译:基于实时场景的非均匀性校正,使用特征模式匹配

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Infrared cameras require constant nonuniformity correction because image nonuniformity occurs with environmental changes. In this paper, we propose a nonuniformity correction algorithm using feature pattern matching that can correct nonuniformities in real time. The proposed algorithm consists of motion estimation and nonuniformity correction steps. The motion estimation algorithm consists of feature extraction, feature point simplification, and feature point pattern generation steps and is proposed to calculate the amount of motion between frames in real time using a field programmable gate array. The experimental results confirm that the proposed method is robust against ghost phenomenon, compared to a statistics-based nonuniformity correction, and improves the real-time performance while providing the same performance as the existing interframe registration-based nonuniformity correction algorithm.
机译:红外摄像机需要恒定的不均匀性校正,因为图像不均匀发生环境变化。在本文中,我们使用能够实时校正不均匀的特征模式匹配来提出不均匀的校正算法。所提出的算法包括运动估计和不均匀性校正步骤。运动估计算法包括特征提取,特征点简化和特征点模式生成步骤,并且建议使用现场可编程门阵列计算帧之间的运动量。实验结果证实,与基于统计学的不均匀性校正相比,该方法对Ghost现象具有鲁棒,并提高了实时性能,同时提供与现有的基于帧间的非均匀性校正算法相同的性能。

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