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首页> 外文期刊>Computer Science and Information Systems >Design of Median-type Filters with an Impulse Noise Detector Using Decision Tree and Particle Swarm Optimization for Image Restoration
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Design of Median-type Filters with an Impulse Noise Detector Using Decision Tree and Particle Swarm Optimization for Image Restoration

机译:基于决策树和粒子群算法的脉冲噪声检测器中值滤波器设计

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摘要

This paper proposes the median-type filters with an impulse noise detector using the decision tree and the particle swarm optimization, for the recovery of the corrupted gray-level images by impulse noises. It first utilizes an impulse noise detector to determine whether a pixel is corrupted or not. If yes, the filtering component in this method is triggered to filter it. Otherwise, the pixel is kept unchanged. In this work, the impulse noise detector is an adaptive hybrid detector which is constructed by integrating 10 impulse noise detectors based on the decision tree and the particle swarm optimization. Subsequently, the restoring process in this method respectively utilizes the median filter, the rank ordered mean filter, and the progressive noise-free ordered median filter to restore the corrupted pixel. Experimental results demonstrate that this method achieves high performance for detecting and restoring impulse noises, and outperforms the existing well-known methods.
机译:提出了一种基于决策树和粒子群优化算法的带脉冲噪声检测器的中值型滤波器,用于通过脉冲噪声恢复损坏的灰度图像。它首先利用脉冲噪声检测器来确定像素是否损坏。如果是,则触发此方法中的过滤组件以对其进行过滤。否则,像素保持不变。在这项工作中,脉冲噪声检测器是一种自适应混合检测器,它是根据决策树和粒子群优化算法集成10个脉冲噪声检测器而构成的。随后,该方法的恢复过程分别利用中值滤波器,秩有序均值滤波器和逐行无噪声有序中值滤波器来恢复损坏的像素。实验结果表明,该方法具有较高的检测和恢复脉冲噪声的性能,其性能优于现有的已知方法。

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