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A Novel Approach for Medical Images Noise Reduction Based RBF Neural Network Filter

机译:基于RBF神经网络滤波器的医学图像降噪新方法

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—This paper is dedicated to the presentation of a Radial basis function neural network (RBFNN) based denoising method for medical images. In the proposed approach, a RBFNN filter is designed where the output of the network is a single denoised pixel and the inputs are its neighborhood in the degraded image. The back-propagation algorithm is used to train the RBFNN filter by minimizing an appropriate error function obtained from the total variation model. The parameters to be adjusted are the weights and the neurons centers of the RBFNN. The considered filter was used to reduce noise from X-ray, MRI and Mammographic medical images giving good results of noise removal when compared to other approaches and using different noise standard deviations.
机译:- 这篇论文专用于呈现基于径向基函数神经网络(RBFNN)的医学图像的去噪方法。在所提出的方法中,设计RBFNN滤波器的设计,其中网络的输出是单个去噪像素,并且输入是其劣化图像中的邻域。反向传播算法用于通过最小化从总变化模型获得的适当误差函数来训练RBFNN滤波器。要调整的参数是RBFNN的重量和神经元中心。所考虑的滤波器用于减少X射线,MRI和乳房X线医学图像的噪声,与其他方法相比并使用不同的噪声标准偏差时噪声去除良好。

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