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Pulse Coupled Neural Network based Near-Duplicate Detection of Images (PCNN - NDD)

机译:基于脉冲耦合神经网络的图像近重复检测(PCNN-NDD)

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Near Duplicate images are variants of original image with some transformations / manipulations / forgeries in it. The illegal copies of images are identified to protect copyright enforcement and reduce redundancy. The existing works in ND detection are less accurate in the identification of similar images as near duplicates. Pulse Coupled Neural Network (PCNN) is found to be a suitable processor for all the image processing techniques including feature extraction. In this paper, PCNN is applied in the detection of near duplicate (ND) images. The proposed work Pulse Coupled Neural Network based Near Duplicate Detection of Images (PCNN-NDD) is a two-step process (1) feature extraction using PCNN and (2) fast image similarity measurement using correlation coefficient. Our system is capable of improving the accuracy effectively. The advantage of the proposed work lies in the proper setting of PCNN parameters to identify the similar images. The experimental results show that our PCNN-NDD system enhances the detection results and improves the accuracy when compared to other traditional systems.
机译:几乎重复的图像是原始图像的变体,其中包含一些转换/操作/伪造。标识图像的非法副本以保护版权实施并减少冗余。 ND检测中的现有工作在将相似图像识别为近似重复时不太准确。发现脉冲耦合神经网络(PCNN)是适用于包括特征提取在内的所有图像处理技术的合适处理器。本文将PCNN应用于近重复(ND)图像的检测。所提出的基于脉冲近邻图像检测的脉冲耦合神经网络(PCNN-NDD)工作分两步进行:(1)使用PCNN进行特征提取和(2)使用相关系数进行快速图像相似性测量。我们的系统能够有效地提高准确性。提出的工作的优势在于适当设置PCNN参数以识别相似图像。实验结果表明,与其他传统系统相比,我们的PCNN-NDD系统可提高检测结果并提高准确性。

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