Yi Faliu, Jeoung Yousun, Moon Inkyu
Appl Opt. 2017 May 20;56(15):4381-4387. doi: 10.1364/AO.56.004381.
In recent years, many studies have focused on authentication of two-dimensional (2D) images using double random phase encryption techniques. However, there has been little research on three-dimensional (3D) imaging systems, such as integral imaging, for 3D image authentication. We propose a 3D image authentication scheme based on a double random phase integral imaging method. All of the 2D elemental images captured through integral imaging are encrypted with a double random phase encoding algorithm and only partial phase information is reserved. All the amplitude and other miscellaneous phase information in the encrypted elemental images is discarded. Nevertheless, we demonstrate that 3D images from integral imaging can be authenticated at different depths using a nonlinear correlation method. The proposed 3D image authentication algorithm can provide enhanced information security because the decrypted 2D elemental images from the sparse phase cannot be easily observed by the naked eye. Additionally, using sparse phase images without any amplitude information can greatly reduce data storage costs and aid in image compression and data transmission.
近年来,许多研究都集中在利用双随机相位加密技术对二维(2D)图像进行认证。然而,对于三维(3D)成像系统,如用于3D图像认证的积分成像,相关研究却很少。我们提出了一种基于双随机相位积分成像方法的3D图像认证方案。通过积分成像捕获的所有2D基元图像都使用双随机相位编码算法进行加密,并且只保留部分相位信息。加密基元图像中的所有幅度和其他杂散相位信息都被丢弃。尽管如此,我们证明了使用非线性相关方法可以对积分成像的3D图像在不同深度进行认证。所提出的3D图像认证算法可以提供增强的信息安全性,因为从稀疏相位解密的2D基元图像不容易被肉眼观察到。此外,使用没有任何幅度信息的稀疏相位图像可以大大降低数据存储成本,并有助于图像压缩和数据传输。