Image features detection using phase congruency and its application in visual servoing

A. Burlacu, C. Lazar
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引用次数: 10

Abstract

Image features represent inputs for different types of visual applications. For visual servoing tasks the chosen features must be stable, accurate and robust. Gradient based algorithms for feature detection are sensitive to noise, illumination change and scale change. Using phase congruency, an image feature detection algorithm is developed based on the local energy model. The performances of the detection algorithm were tested using a simulated visual servoing architecture. Simulation was performed using an image sequence acquired by an eye-in-hand real system of a six degree of freedom robot manipulator.
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相位一致性图像特征检测及其在视觉伺服中的应用
图像特征表示不同类型的视觉应用程序的输入。对于视觉伺服任务,所选择的特征必须稳定、准确和鲁棒。基于梯度的特征检测算法对噪声、光照变化和尺度变化敏感。利用相位一致性,提出了一种基于局部能量模型的图像特征检测算法。利用仿真视觉伺服结构对检测算法的性能进行了测试。利用六自由度机械臂眼手实景系统获取的图像序列进行仿真。
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