使用对数极图像表示的高效鲁棒感知哈希

Cezar Plesca, Luciana Morogan
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引用次数: 9

摘要

鲁棒图像哈希寻求使用依赖键的不可逆变换将给定的输入图像转换为更短的哈希版本。这些散列在内容认证、数据库搜索的图像索引和水印中有广泛的应用。现代鲁棒哈希算法包括特征提取、引入不可逆性的随机化阶段、量化和二进制编码以产生二进制哈希。本文提出了一种基于对数极坐标变换特征生成图像哈希的新算法。对数极坐标变换是傅里叶-梅林变换的一部分,由于其对几何运算的不变性,常用于图像识别和配准技术。首先,我们证明了所提出的感知哈希可以抵抗内容保留操作,如压缩、噪声添加、适度几何和滤波。其次,我们说明了哈希的判别能力,以便快速区分两个感知不同的图像。第三,我们研究了图像认证方法的安全性。最后,我们证明了所提出的哈希方法可以提供良好的安全性和鲁棒性。
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Efficient and robust perceptual hashing using log-polar image representation
Robust image hashing seeks to transform a given input image into a shorter hashed version using a key-dependent non-invertible transform. These hashes find extensive applications in content authentication, image indexing for database search and watermarking. Modern robust hashing algorithms consist of feature extraction, a randomization stage to introduce non-invertibility, followed by quantization and binary encoding to produce a binary hash. This paper describes a novel algorithm for generating an image hash based on Log-Polar transform features. The Log-Polar transform is a part of the Fourier-Mellin transformation, often used in image recognition and registration techniques due to its invariant properties to geometric operations. First, we show that the proposed perceptual hash is resistant to content-preserving operations like compression, noise addition, moderate geometric and filtering. Second, we illustrate the discriminative capability of our hash in order to rapidly distinguish between two perceptually different images. Third, we study the security of our method for image authentication purposes. Finally, we show that the proposed hashing method can provide both excellent security and robustness.
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