An Intelligent Learning Approach for Information Hiding in 3D Multimedia

R. Motwani, M. Motwani, Frederick C. Harris, Jr.
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引用次数: 2

Abstract

This paper presents a new watermarking algorithm for 3D triangular mesh models that is based on surface curvature estimation and supervised learning. A feedforward backpropagation neural network is adopted for selecting vertices for watermark insertion. A variety of 3D models with varying degrees of surface curvature are used to train and simulate the neural network. An array of neural networks is used for vertices with different valences to achieve higher watermark embedding capacity. A gray scale bitmap image is used as the watermark. The watermark extraction process is informed and needs the original watermark and 3D model. Experimental results evaluate the embedding capacity, imperceptibility and robustness of the proposed algorithm and simulate various attacks including noise addition, smoothing and cropping.
三维多媒体信息隐藏的智能学习方法
提出了一种基于曲面曲率估计和监督学习的三维三角形网格模型水印算法。采用前馈反向传播神经网络选择嵌入水印的顶点。利用不同曲面曲率度的三维模型对神经网络进行训练和仿真。对不同值的顶点采用神经网络阵列,提高了水印的嵌入能力。采用灰度位图图像作为水印。水印提取过程是知情的,需要原始水印和三维模型。实验结果评估了该算法的嵌入能力、不可感知性和鲁棒性,并模拟了各种攻击,包括噪声添加、平滑和裁剪。
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