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Sensor-Based Auto-Focusing System Using Multi-Scale Feature Extraction and Phase Correlation Matching

机译:基于传感器的自动聚焦系统,使用多尺度特征提取和相位相关匹配

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This paper presents a novel auto-focusing system based on a CMOS sensor containing pixels with different phases. Robust extraction of features in a severely defocused image is the fundamental problem of a phase-difference auto-focusing system. In order to solve this problem, a multi-resolution feature extraction algorithm is proposed. Given the extracted features, the proposed auto-focusing system can provide the ideal focusing position using phase correlation matching. The proposed auto-focusing (AF) algorithm consists of four steps: (i) acquisition of left and right images using AF points in the region-of-interest; (ii) feature extraction in the left image under low illumination and out-of-focus blur; (iii) the generation of two feature images using the phase difference between the left and right images; and (iv) estimation of the phase shifting vector using phase correlation matching. Since the proposed system accurately estimates the phase difference in the out-of-focus blurred image under low illumination, it can provide faster, more robust auto focusing than existing systems.
机译:本文提出了一种基于CMOS传感器的新型自动聚焦系统,该传感器包含具有不同相位的像素。严重散焦图像中特征的鲁棒提取是相差自动聚焦系统的基本问题。为了解决这个问题,提出了一种多分辨率特征提取算法。给定提取的特征,提出的自动聚焦系统可以使用相位相关匹配来提供理想的聚焦位置。提出的自动聚焦(AF)算法包括四个步骤:(i)使用感兴趣区域中的AF点获取左右图像; (ii)在低照度和离焦模糊下从左图像中提取特征; (iii)利用左右图像之间的相位差产生两个特征图像; (iv)使用相位相关匹配来估计相移矢量。由于拟议的系统可以准确估计低照度下失焦模糊图像的相位差,因此与现有系统相比,它可以提供更快,更可靠的自动聚焦。

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