首页> 外文会议>Conference on Applications of Artificial Neural Networks in Image Processing VIII Jan 23-24, 2003 Santa Clara, California, USA >Neural Network-based Image Resolution Enhancement from a Multiple of Low-resolution Images
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Neural Network-based Image Resolution Enhancement from a Multiple of Low-resolution Images

机译:来自多个低分辨率图像的基于神经网络的图像分辨率增强

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摘要

A neural network based image enhancement method is introduced to improve the image resolution from a sequence of low resolution image frames. Most of the existing methods reconstruct a high-resolution image from a multiple of low-resolution image frames by minimizing some established cost function using a mathematical technique. This method, however, uses an integrated recurrent neural network (IRNN) that is particularly designed to be capable of learning an optimal mapping from a multiple of low-resolution image frames to a high-resolution image through training. The IRNN consists of four feed-forward sub-networks working collectively with the ability of having a feedback of information from its output to input. As such, it is capable of both learning and searching the optimal solution in the solution space leading to high resolution images. Simulation results demonstrate that the proposed IRNN has good potential in solving image resolution enhancement problem, as it can adapt itself to the various conditions of the reconstruction problem by learning.
机译:引入了基于神经网络的图像增强方法,以从一系列低分辨率图像帧中提高图像分辨率。大多数现有方法通过使用数学技术最小化一些已建立的成本函数,从而从多个低分辨率图像帧中重建高分辨率图像。但是,此方法使用了集成的递归神经网络(IRNN),该网络经过专门设计,能够通过训练学习从多个低分辨率图像帧到高分辨率图像的最佳映射。 IRNN由四个前馈子网组成,这些子网共同工作,具有从其输出到输入的信息反馈。这样,它就能够在导致高分辨率图像的解空间中学习和搜索最佳解。仿真结果表明,所提出的IRNN具有很好的解决图像分辨率增强问题的潜力,因为它可以通过学习适应各种重构问题。

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