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Natural Image-Orientated Hybrid Filter Using Pulse Coupled Neural Network

机译:使用脉冲耦合神经网络的面向自然图像的混合滤波器

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摘要

Noise introduced during capture and transmission is inevitable for natural images generated by Complementary Metal-Oxide-Semiconductor (CMOS) sensors, including quantization error during digitalization, transmission disturbance and other sources of noise. To process natural images from a CMOS sensor, a hybrid filter combining Pulse Coupled Neural Network (PCNN), median filter and Wiener filter is proposed in this paper. First, salt-and-pepper noise is located via PCNN, and processed by a median filter. Then, Gaussian noise is removed by a self-adaptive Wiener filter. Simulation results indicated that compared to other methods (hybrid filter containing median and Wiener filter, hybrid filter containing median and wavelet filter), the hybrid filter with PCNN demonstrates better performance in the preservation of image detail and edge in the premise of similar Signal-Noise Ratios (SNRs).
机译:对于互补金属氧化物半导体(CMOS)传感器生成的自然图像,在捕获和传输期间引入的噪声是不可避免的,包括数字化期间的量化误差,传输干扰和其他噪声源。为了处理来自CMOS传感器的自然图像,本文提出了一种结合了脉冲耦合神经网络(PCNN),中值滤波器和维纳滤波器的混合滤波器。首先,椒盐噪声通过PCNN定位,并由中值滤波器处理。然后,通过自适应维纳滤波器消除高斯噪声。仿真结果表明,与其他方法(包含中值和维纳滤波器的混合滤波器,包含中值和小波滤波器的混合滤波器)相比,具有PCNN的混合滤波器在保持类似信号噪声的前提下,在保留图像细节和边缘方面表现出更好的性能。比率(SNR)。

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